Compositions Comprising Modified Anellovirus Capsid Proteins and Uses Thereof
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- FLAGSHIP PIONEERING INNOVATIONS V INC
- Filing Date
- 2023-05-18
- Publication Date
- 2026-05-29
AI Technical Summary
There is a need for vectors that can effectively deliver therapeutic agents to patients, particularly to eukaryotic cells, while minimizing immune or inflammatory responses.
The development of anaerovectors, which are synthetic particles comprising a genetic element encapsulated in a proteinaceous outer part, specifically utilizing Anellovirus capsid proteins to facilitate delivery to eukaryotic cells without eliciting a significant immune response.
Anaerovectors efficiently deliver genetic material or therapeutic agents to eukaryotic cells, reducing the risk of immune activation and providing a targeted approach for therapeutic interventions.
Abstract
Description
[Technical field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 63 / 344,019, filed May 19, 2022, and U.S. Provisional Patent Application No. 63 / 387,337, filed December 14, 2022. The contents of the foregoing applications are hereby incorporated by reference in their entireties.
[0002] There is a continuing need to develop vectors suitable for delivering therapeutic agents to patients. Summary of the Invention [Means for solving the problem]
[0003] The present disclosure provides anaerovectors, e.g., synthetic anaerovectors, that can be used, e.g., as a delivery vehicle to deliver genetic material, to deliver an effector, e.g., a payload, or to deliver a therapeutic agent or effector to a eukaryotic cell (e.g., a human cell or tissue). In some embodiments, the anaerovector (e.g., a particle, e.g., a viral particle, e.g., an Anellovirus particle) comprises a genetic element (e.g., a genetic element comprising a therapeutic DNA sequence) encapsulated in a proteinaceous outer part (e.g., a proteinaceous outer part comprising a polypeptide encoded by an Anellovirus capsid protein, e.g., an Anellovirus ORF1 molecule or an Anellovirus ORF1 nucleic acid, e.g., as described herein), where the proteinaceous outer part is capable of introducing the genetic element into a cell (e.g., a mammalian cell, e.g., a human cell). In some embodiments, the anaerovector is a particle that includes a proteinaceous outer portion that includes a polypeptide encoded by an Anellovirus ORF1 nucleic acid (e.g., an ORF1 nucleic acid of Betatorquevirus, e.g., as described herein).
[0004] In some embodiments, the proteinaceous outer portion of the anaerovector or anaeroVLP comprises a modified anaerovirus ORF1 molecule. In some embodiments, the anaerovirus ORF1 molecule is modified to delete at least a portion of the structural arginine-rich region (e.g., as described herein). In some embodiments, the anaerovirus ORF1 molecule is modified to delete at least a portion of the structural C-terminal domain (e.g., as described herein). In some embodiments, the anaerovirus ORF1 molecule is a chimeric ORF1 molecule that includes a fragment or domain (e.g., a structural arginine-rich region, a P1 domain, a P2 domain, a P1-1 domain, and / or a P1-2 domain, e.g., as described herein) from a different anaerovirus ORF1 protein (e.g., as described herein). In some embodiments, the anaerovirus ORF1 molecule is a chimeric ORF1 molecule that includes a fragment or domain from a protein other than the anaerovirus ORF1 protein (e.g., a protein from another virus, e.g., as described herein).
[0005] In some embodiments, the anaerovector or anaeroVLP comprises a surface moiety as described herein on its outer surface (e.g., linked to a proteinaceous outer moiety). In some embodiments, the proteinaceous outer moiety comprises an ORF1 molecule linked to a surface moiety. In some embodiments, the proteinaceous outer moiety comprises an ORF1 molecule comprising a click handle. In some embodiments, the proteinaceous outer moiety comprises an ORF1 molecule fused to a polypeptide surface moiety. In some embodiments, the proteinaceous outer moiety comprises multiple ORF1 molecules each linked to a surface moiety, for example, where these multiple ORF1 molecules form a multimer (e.g., a dimer, trimer, or pentamer).
[0006] The genetic elements of the anaerovectors of the present disclosure are typically circular and / or single-stranded DNA molecules (e.g., circular and single stranded) and generally include a protein binding sequence that may bind to the proteinaceous exterior that encapsulates it, or to a polypeptide associated therewith, thereby facilitating encapsulation of the genetic element within the proteinaceous exterior and / or enrichment of the genetic element relative to other nucleic acids within the proteinaceous exterior. In some examples, the genetic element is circular or linear. In some examples, the genetic element includes or encodes an effector (e.g., a nucleic acid effector, such as a non-coding RNA, or a polypeptide effector, e.g., a protein), e.g., the effector can be expressed in the cell. In some embodiments, the effector is a therapeutic agent or therapeutic effector, e.g., as described herein. In some embodiments, the effector is an endogenous or exogenous effector, e.g., to the wild-type Anellovirus or to the target cell. In some cases, the effector is an exogenous effector to the wild-type Anellovirus or the target cell. In some embodiments, the Anellovector can deliver an effector into a cell by introducing a genetic element encoding the effector into the cell such that upon contact with the cell, the effector is produced or expressed by the cell. In certain cases, the effector is an endogenous effector (e.g., endogenous to the target cell but provided in increased amounts, e.g., by the Anellovector). In other cases, the effector is an exogenous effector. The effector can, in some cases, modulate the function of a cell or modulate the activity or level of a target molecule in a cell. For example, the effector can reduce the level of a target protein in a cell. In another example, the Anellovector can deliver and express an effector, e.g., an exogenous protein, in vivo.Anellovectors can be used, for example, to deliver genetic material to a target cell, tissue, or subject; to deliver effectors to a target cell, tissue, or subject; or to treat a disease or disorder, for example, by delivering an effector that can act as a therapeutic agent to a desired cell, tissue, or subject. In some examples, anelovectors are generated by in vitro assembly. In vitro assembly of anelovectors generally involves the formation of a proteinaceous exterior that encapsulates the genetic elements, which is performed outside the host cell (e.g., in a cell-free suspension, lysate, or supernatant). In vitro assembly utilizes components produced in the host cell in some examples, but generally no host cell is required for particle assembly.
[0007] The present disclosure provides anaeroVLPs, e.g., synthetic anaeroVLPs, that can be used, for example, as a delivery vehicle for delivering genetic material, for delivering an effector, e.g., a payload, or for delivering a therapeutic agent or therapeutic effector to a eukaryotic cell (e.g., a human cell or human tissue). An anaeroVLP generally comprises a surface moiety as described herein on its outer surface (e.g., associated with a proteinaceous outer moiety). In some embodiments, the surface moiety comprises an effector. In some embodiments, the surface moiety comprises a targeting agent (e.g., an agent that targets the anaeroVLP to a target cell or tissue). In some embodiments, an anaeroVLP (e.g., a particle, e.g., a viral particle, e.g., an Anellovirus particle) comprises a proteinaceous outer moiety (e.g., a proteinaceous outer moiety comprising an Anellovirus capsid protein, e.g., a polypeptide encoded by an Anellovirus ORF1 molecule or an Anellovirus ORF1 nucleic acid, e.g., as described herein). In some embodiments, anelloVLPs are particles that include a proteinaceous outer part that includes a polypeptide encoded by an Anellovirus ORF1 nucleic acid (e.g., an ORF1 nucleic acid of Betatorquevirus, e.g., as described herein). In some embodiments, the proteinaceous outer part encapsulates an effector. In some embodiments, the effector is a therapeutic agent or a therapeutic effector, e.g., as described herein. In some examples, the effector is an endogenous effector or an exogenous effector, e.g., to a wild-type Anellovirus or a target cell. In some embodiments, the effector is exogenous to a wild-type Anellovirus or a target cell. In some embodiments, anelloVLPs can deliver an effector to a cell by contacting the cell and introducing the effector into the cell.In certain instances, the effector is an endogenous effector (e.g., endogenous to the target cell but provided in increased amounts, e.g., by anelloVLP). In other instances, the effector is an exogenous effector. The effector can, in some instances, modulate the function of a cell or modulate the activity or level of a target molecule in a cell. For example, the effector can reduce target protein levels in a cell. In another example, anelloVLP can deliver an effector, e.g., an exogenous protein, in vivo. AnelloVLPs can be used, for example, to deliver an effector to a target cell, tissue, or subject; or can be used for the treatment of diseases and disorders, for example, by delivering an effector that can act as a therapeutic agent to a desired cell, tissue, or subject. In some instances, anelloVLPs are created by in vitro assembly. In vitro assembly of anelloVLPs generally involves the formation of a proteinaceous outer portion (e.g., a proteinaceous outer portion that encapsulates an effector) that is linked to an effector, and is performed outside of a host cell (e.g., in a cell-free suspension, lysate, or supernatant). In vitro assembly of anelloVLPs utilizes components produced in the host cell in some instances, but generally does not require a host cell for particle assembly.
[0008] The present invention further provides synthetic anaerovectors and synthetic anaeroVLPs. The synthetic anaerovectors or synthetic anaeroVLPs have at least one structural difference, such as a deletion, insertion, substitution, modification (e.g., enzymatic modification) compared to a wild-type virus (e.g., a wild-type Anellovirus, e.g., as described herein), compared to the wild-type virus. Generally, the synthetic anaerovectors and synthetic anaeroVLPs include a proteinaceous outer part, which can be used to deliver an effector (e.g., an exogenous effector or an endogenous effector) to a eukaryotic (e.g., human) cell. In some embodiments, the anaerovectors or anaeroVLPs do not elicit a detectable and / or undesirable immune or inflammatory response, e.g., do not elicit greater than a 1%, 5%, 10%, 15% increase in one or more inflammatory molecular markers, e.g., TNF-α, IL-6, IL-12, IFN, and B cell responses, e.g., reactive or neutralizing antibodies, e.g., the anaerovectors or anaeroVLPs may be substantially non-immunogenic to a target cell, tissue, or subject.
[0009] In one aspect, the invention features an anaerovector that includes: (i) a genetic element that includes a promoter element and a sequence encoding an effector (e.g., an endogenous or exogenous effector), and a protein binding sequence (e.g., an exterior portion protein binding sequence, e.g., a packaging signal); and (ii) a proteinaceous exterior portion; the genetic element is encapsulated within the proteinaceous exterior portion (e.g., a capsid); and the anaerovector is capable of delivering the genetic element to a eukaryotic (e.g., mammalian, e.g., human) cell. In some embodiments, the anaerovector includes a surface moiety (e.g., a surface moiety having an effector and / or targeting functionality), e.g., displayed on the exterior portion surface of the anaerovector (e.g., as described herein). In some embodiments, the surface moiety includes an effector.
[0010] In some embodiments, the genetic element is single-stranded and / or circular DNA. Alternatively or in combination, the genetic element has one, two, three, or all of the following properties: circular, single-stranded, integrates into the genome of the cell at a frequency of less than about 0.0001%, 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 1.5%, or 2% of the genetic elements entering the cell, and / or integrates into the genome of the target cell at less than 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, or 30 copies per genome. In some embodiments, the integration frequency is determined, for example, as described in Wang et al. (2004, Gene Therapy 11:711-721, incorporated herein by reference in its entirety). In some embodiments, the genetic element is encapsulated within a proteinaceous exterior. In some embodiments, the anaerovector is capable of delivering genetic elements into eukaryotic cells. In some embodiments, the genetic elements include sequences of wild-type anellovirus (e.g., wild-type Torque Teno virus (TTV), Torque Teno minivirus (TTV), and the like. A26 Tables A1-A26 or N1-N266).In some embodiments, the genetic element comprises a nucleic acid sequence (e.g. a nucleic acid sequence of at least 300 nucleotides, 500 nucleotides, 1000 nucleotides, 1500 nucleotides, 2000 nucleotides, 2500 nucleotides, 3000 nucleotides or more) having at least 75% (e.g. at least 75, 76, 77, 78, 79, 80, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100%) sequence identity to a wild-type Anellovirus sequence (e.g. a wild-type Anellovirus sequence as listed in any one of A26 Tables A1-A26 or N1-N266 described herein). In some embodiments, the nucleic acid sequence is codon optimized, for example for expression in a mammalian (e.g. human) cell. In some embodiments, at least 50%, 60%, 70%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the codons in a nucleic acid sequence are codon optimized, e.g., for expression in a mammalian (e.g., human) cell.
[0011] In one aspect, the invention features an annellovLP comprising a proteinaceous outer part (e.g., a capsid) and an effector; the annellovLP having the ability to deliver the effector to a eukaryotic (e.g., mammalian, e.g., human) cell. In some embodiments, the effector is included in a surface moiety, e.g., displayed on the outer part surface of the annellovLP (e.g., as described herein).
[0012] In some aspects, the invention features an infectious (to a human cell) particle that includes an anellovirus capsid (e.g., a capsid that includes an anellovirus ORF, e.g., ORF1, polypeptide). In some embodiments, the infectious particle encapsulates a genetic element that includes a protein binding sequence that binds to the capsid and a heterologous (to the anellovirus) sequence that encodes a therapeutic effector. In some embodiments, the particle is capable of delivering the genetic element to a mammalian cell, e.g., a human cell. In some embodiments, the genetic element has less than about 6% identity (e.g., less than 6%, 5.5%, 5%, 4.5%, 4%, 3.5%, 3%, 2.5%, 2%, 1.5%, or less) with a wild-type anellovirus. In some embodiments, the genetic element has no more than 1.5%, 2%, 2.5%, 3%, 3.5%, 4%, 4.5%, 5%, 5.5%, or 6% identity with a wild-type anellovirus. In some embodiments, the genetic element has at least about 2% to at least about 5.5% (e.g., 2-5%, 3%-5%, 4%-5%) identity to a wild-type Anellovirus. In some embodiments, the genetic element has about 2000, 3000, 4000, 4500, or more than 5000 nucleotides of non-viral sequence (e.g., non-Anellovirus genomic sequence). In some embodiments, the genetic element has about 2000-5000, 2500-4500, 3000-4500, 2500-4500, 3500, or more than 4000, 4500 (e.g., about 3000-4500) nucleotides of non-viral sequence (e.g., non-Anellovirus genomic sequence). In some embodiments, the genetic element is single-stranded, circular DNA.Alternatively, or in combination, the genetic element has one, two or three of the following properties: it is circular, it is single stranded, it integrates into the genome of the cell at a frequency of less than about 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 1.5%, or 2% of the genetic elements that enter the cell, it integrates into the genome of the target cell at less than 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, or 30 copies per genome, or it integrates at a frequency of less than about 0.0001%, 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 1.5%, or 2% of the genetic elements that enter the cell. In some embodiments, the integration frequency is determined, for example, as described in Wang et al. (2004, Gene Therapy 11:711-721, incorporated herein by reference in its entirety).
[0013] Also described herein are anellovirus-based viral vectors and viral particles that can be used to deliver agents (e.g., exogenous or endogenous effectors, e.g., therapeutic effectors) to cells (e.g., cells of a subject undergoing a therapeutic treatment). In some embodiments, anelloviruses can be used as an effective delivery vehicle to introduce agents, such as the effectors described herein, into target cells, e.g., target cells of a subject undergoing a therapeutic or prophylactic treatment.
[0014] In one aspect, the present invention provides a method for (e.g., in order) (i) a first region comprising a structural arginine-rich region, e.g., an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to a structural arginine-rich region sequence described herein, or a sequence of at least about 40 amino acids in which at least 60%, 70%, or 80% are basic residues (e.g., arginine, lysine, or a combination thereof); (ii) a second region comprising a structural jelly-roll domain, e.g., an amino acid sequence having at least 30% (e.g., at least about 30, 35, 40, 50, 60, 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to a structural jelly-roll domain sequence described herein or a sequence comprising at least six β-strands; (iii) a third region comprising an amino acid sequence having at least 30% (e.g., at least about 30, 35, 40, 50, 60, 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to a structural N22 domain sequence described herein; (iv) a fourth region comprising an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to an anellovirus ORF1 structural C-terminal domain (CTD) sequence described herein. and (v) optionally, a polypeptide having an amino acid sequence having less than 100%, 99%, 98%, 95%, 90%, 85%, 80% sequence identity to a wild-type anellovirus ORF1 protein described herein.
[0015] In some embodiments, the polypeptide comprises at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100% sequence identity to an anellovirus ORF1 molecule as described herein (e.g., as listed in any one of Tables A1-A26). In some embodiments, the polypeptide comprises at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100% sequence identity to a subsequence of an A26 anellovirus ORF1 molecule as described herein (e.g., a structural arginine (Arg)-rich domain, a structural jellyroll domain, a hypervariable region (HVR), a structural N22 domain, or a structural C-terminal domain (CTD)). In one embodiment, the amino acid sequences of regions (i), (ii), (iii), and (iv) have at least 90% sequence identity to their respective references, wherein the polypeptide has an amino acid sequence having less than 100%, 99%, 98%, 95%, 90%, 85%, 80% sequence identity to a wild-type anellovirus ORF1 protein described herein.
[0016] In one aspect, the invention features a complex that includes a polypeptide as described herein (e.g., an anellovirus ORF1 molecule as described herein) and a genetic element that includes a promoter element and a nucleic acid sequence (e.g., a DNA sequence) encoding an effector (e.g., an exogenous effector or an endogenous effector), and a protein binding sequence.
[0017] The disclosure further provides nucleic acid molecules, such as nucleic acid molecules comprising genetic elements as described herein, or nucleic acid molecules comprising sequences encoding proteinaceous exterior proteins as described herein. The nucleic acid molecules of the invention may comprise one or both of (a) genetic elements as described herein, and (b) nucleic acid sequences encoding proteinaceous exterior proteins as described herein.
[0018] In one aspect, the invention features an isolated nucleic acid that includes a genetic element that includes a promoter element operably linked to a sequence encoding an effector, e.g., a payload, and an exogenous protein binding sequence. In some embodiments, the exogenous protein binding sequence includes a sequence that is at least 75% (at least 80%, 85%, 90%, 95%, 97%, 100%) identical to a 5'UTR sequence of an Anellovirus disclosed herein. In some embodiments, the genetic element is single stranded DNA, is circular, is integrated at a frequency of less than about 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 1.5%, or 2% of the genetic elements that enter the cell, and / or is integrated into the genome of the target cell at less than 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, or 30 copies per genome, or is integrated at a frequency of less than about 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 1.5%, or 2% of the genetic elements that enter the cell. In some embodiments, the integration frequency is determined as described in Wang et al. (2004, Gene Therapy 11:711-721, incorporated herein by reference in its entirety). In some embodiments, the effector is not derived from TTV and is not SV40-miR-S1. In some embodiments, the nucleic acid molecule does not include the polynucleotide sequence of TTMV-LY2. In some embodiments, the promoter element can direct the expression of the effector in eukaryotic (e.g., mammalian, e.g., human) cells.
[0019] In some embodiments, the nucleic acid molecule is circular. In some embodiments, the nucleic acid molecule is linear. In some embodiments, the nucleic acid molecule described herein comprises one or more modified nucleotides (e.g., base, sugar, or backbone modifications).
[0020] In some embodiments, the nucleic acid molecule comprises a sequence encoding an ORF1 molecule (e.g., an Anellovirus ORF1 protein, e.g., as described herein). In some embodiments, the nucleic acid molecule comprises a sequence encoding an ORF2 molecule (e.g., an Anellovirus ORF2 protein, e.g., as described herein). In some embodiments, the nucleic acid molecule comprises a sequence encoding an ORF3 molecule (e.g., an Anellovirus ORF3 protein, e.g., as described herein). In one aspect, the invention features a genetic element that includes one, two, or three of the following: (i) a promoter element and a sequence encoding an effector, e.g., an exogenous or endogenous effector; (ii) at least 72 contiguous nucleic acids (e.g., at least 72, 73, 74, 75, 76, 77, 78, 79, 80, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100%) having sequence identity to a wild-type Anellovirus sequence; or at least 72 contiguous nucleic acids (e.g., at least 72, 73, 74, 75, 76, 77, 78, 79, 80, 90, 100, or 150 nucleotides) having at least 75% (e.g., at least 75, 76, 77, 78, 79, 80, 90, 100, or 150%) sequence identity to a wild-type Anellovirus sequence; 73, 74, 75, 76, 77, 78, 79, 80, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100%) sequence identity; and (iii) a protein binding sequence, e.g., an exogenous protein binding sequence, wherein the nucleic acid construct comprises a single and the nucleic acid construct is circular and integrates at a frequency of about 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 1.5%, or 2% of the genetic elements that enter the cell, and / or integrates into the genome of the target cell at less than 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, or 30 copies per genome.In some embodiments, a genetic element encoding an effector (e.g., an exogenous or endogenous effector) is codon optimized. In some embodiments, the genetic element is circular. In some embodiments, the genetic element is linear. In some embodiments, the genetic element comprises an anellovector, e.g., as described herein. In some embodiments, the genetic element described herein comprises one or more modified nucleotides (e.g., a base modification, a sugar modification, or a backbone modification). In some embodiments, the genetic element comprises a sequence encoding an ORF1 molecule (e.g., an Anellovirus ORF1 protein, e.g., as described herein). In some embodiments, the genetic element comprises a sequence encoding an ORF2 molecule (e.g., an Anellovirus ORF2 protein, e.g., as described herein). In some embodiments, the genetic element comprises a sequence encoding an ORF3 molecule (e.g., an Anellovirus ORF3 protein, e.g., as described herein).
[0021] In some aspects, the invention features a host or helper cell that includes: (a) a nucleic acid that includes a sequence encoding one or more of an ORF1, ORF2, or ORF3 molecule (e.g., a sequence encoding an anellovirus ORF1 polypeptide described herein), the nucleic acid being a plasmid, a viral nucleic acid, or integrated into a helper cell chromosome; and (b) a genetic element that includes (i) a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an effector (e.g., an exogenous effector or an endogenous effector), and (ii) a genetic element that includes a protein binding sequence that binds the polypeptide of (a), where optionally, the genetic element does not encode the ORF1 polypeptide (e.g., an ORF1 protein). For example, the host or helper cell includes (a) and (b) in either cis (both portions of the same nucleic acid molecule) or in trans (each portion of a different nucleic acid molecule). In some embodiments, the genetic element of (b) is circular, single-stranded DNA. In some embodiments, the host cell is a manufacturing cell line. In some embodiments, the host or helper cells are adherent or in suspension, or both. In some embodiments, the host or helper cells are grown in microcarriers. In some embodiments, the host or helper cells comply with cGMP manufacturing practices. In some embodiments, the host or helper cells are grown in a medium suitable for promoting cell growth. In certain embodiments, once the host or helper cells have grown sufficiently (e.g., to an appropriate cell density), the medium may be replaced with a medium suitable for production of the anaerovector by the host or helper cells.
[0022] In some aspects, the invention features a pharmaceutical composition that includes an anelovector (e.g., a synthetic anelovector) described herein. In embodiments, the pharmaceutical composition further includes a pharma- ceutical acceptable carrier or excipient. In some embodiments, the pharmaceutical composition further includes a pharma- ceutical acceptable carrier or excipient. In some embodiments, the pharmaceutical composition is administered at about 10 per kilogram of the subject. 5~10 14 In some embodiments, the pharmaceutical composition comprising the preparation is stable for an acceptable period of time and temperature, and / or is compatible with the desired route of administration and / or any device required by this route of administration, such as a needle or syringe. In some embodiments, the pharmaceutical composition is formulated for administration as a single dose or multiple doses. In some embodiments, the pharmaceutical composition is formulated at the site of administration, e.g., by a medical professional. In some embodiments, the pharmaceutical composition comprises a desired concentration of anellovector genome or genome equivalent (e.g., defined by the number of genomes per volume).
[0023] In one aspect, the invention features a method of treating a disease or disorder in a subject, the method includes administering to the subject an annelovector, e.g., a synthetic annelovector as described herein.
[0024] In one aspect, the invention features a method of delivering an effector or payload (e.g., an endogenous effector or an exogenous effector) to a cell, tissue, or subject, the method includes administering to a subject an anaerovector, e.g., a synthetic anaerovector as described herein, where the anaerovector includes a nucleic acid encoding the effector. In some embodiments, the payload is a nucleic acid. In some embodiments, the payload is a polypeptide.
[0025] In one aspect, the invention features a method of delivering an annelovector to a cell, including contacting an annelovector, e.g., a synthetic annelovector as described herein, with a cell, e.g., a eukaryotic cell, e.g., a mammalian cell, e.g., in vivo or ex vivo.
[0026] In one aspect, the invention features a method of treating a disease or disorder in a subject, the method including administering to the subject an anaeroVLP, e.g., a synthetic anaeroVLP, e.g., as described herein.
[0027] In one aspect, the invention features a method of delivering an effector or payload (e.g., an endogenous or exogenous effector) to a cell, tissue, or subject, comprising administering to a subject an anaeroVLP, e.g., a synthetic anaeroVLP, e.g., as described herein, where the anaeroVLP comprises an effector (e.g., where the proteinaceous outer portion of the anaeroVLP encapsulates the effector). In an embodiment, the payload is a nucleic acid. In an embodiment, the payload is a polypeptide (e.g., a protein).
[0028] In one aspect, the invention features a method of delivering anelloVLP to a cell, the method including contacting an anneloVLP, e.g., as described herein, e.g., a synthetic anneloVLP, with a cell, e.g., a eukaryotic cell, e.g., a mammalian cell, e.g., in vivo or ex vivo.
[0029] In one aspect, the invention features a method of making an annellvector, e.g., a synthetic annellvector, comprising: a) providing a host cell, the host cell comprising: (i) a first nucleic acid molecule comprising a nucleic acid sequence of a genetic element of an anaerovector, e.g., a synthetic anaerovector, as described herein; and (ii) a first nucleic acid or a second nucleic acid molecule encoding one or more of the amino acid sequences selected from ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, or ORF1 / 2, e.g., as set forth in any one of Tables A1 to A266, or an amino acid sequence having at least 70% (e.g., at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100%) sequence identity thereto; Contains; and b) incubating the host cells under conditions suitable for producing the anellovector; Includes.
[0030] In some embodiments, the method further comprises introducing the first and / or second nucleic acid molecule into the host cell prior to step (a). In some embodiments, the second nucleic acid molecule is introduced into the host cell prior to, simultaneously with, or after the first nucleic acid molecule. In other embodiments, the second nucleic acid molecule is integrated into the genome of the host cell. In some embodiments, the second nucleic acid molecule is a helper (e.g., a helper plasmid or the genome of a helper virus).
[0031] In another aspect, the present invention provides a method for producing an anelovectin composition, comprising the steps of: a) providing a host cell that contains, e.g., expresses, one or more components (e.g., all components) of an anaerovector, e.g., a synthetic anaerovector, e.g., as described herein. For example, the host cell contains (a) a nucleic acid that contains a sequence encoding an anellovirus ORF1 polypeptide described herein, which is a plasmid, a viral nucleic acid, or is integrated into a helper cell chromosome; and (b) a genetic element that contains (i) a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an effector (e.g., an exogenous effector or an endogenous effector), and (i) a protein binding sequence (e.g., a packaging sequence) that binds the polypeptide of (a), wherein the host cell or helper cell contains (a) and (b) either in cis or in trans. In embodiments, the genetic element of (b) is a circular, single-stranded DNA. In some embodiments, the host cell is a manufacturing cell line; b) culturing the host cells under conditions suitable for producing an anaerovector preparation from the host cells, wherein the anaerovector in the preparation comprises a proteinaceous outer portion (e.g., comprising an ORF1 molecule) that encapsulates a genetic element (e.g., as described herein), thereby creating an anaerovector preparation; and Optionally, c) formulating the anellovector preparation, e.g., as a pharmaceutical composition suitable for administration to a subject. The present invention is characterized by a method comprising the steps of:
[0032] In some embodiments, at the time of production, the anaerovector construct is introduced into a host cell (e.g., by transient transfection). In some embodiments, the host cell stably expresses the anaerovector construct (e.g., where one or more nucleic acids encoding the anaerovector construct are introduced into the host cell, or a progenitor cell thereof, e.g., by stable transfection).
[0033] In some embodiments, the method further comprises one or more purification steps (e.g., purification by precipitation, chromatography, and / or ultrafiltration). In some embodiments, the purification step comprises removing one or more of serum, host cell DNA, host cell proteins, particles lacking genetic elements, and / or phenol red from the preparation. In some embodiments, the resulting preparation or pharmaceutical composition comprising the preparation will be stable for an acceptable period of time and temperature, and / or compatible with the desired route of administration and / or any equipment that may be required for that route of administration, e.g., a needle or syringe.
[0034] In one aspect, the invention features a method of producing an anaerovector composition, comprising: a) providing a plurality of anaerovectors described herein, or a preparation of an anaerovector described herein; and b) formulating the anaerovector or the preparation thereof, e.g., as a pharmaceutical composition suitable for administration to a subject.
[0035] In one aspect, the invention features a method of producing an anelloVLP composition, the method including: a) providing a plurality of anelloVLPs described herein, or a preparation of anelloVLPs described herein; and b) formulating the anelloVLPs or the preparation thereof, e.g., as a pharmaceutical composition suitable for administration to a subject.
[0036] In one aspect, the invention features a method of generating a population of host cells, e.g., first host cells or producer cells (e.g., such as those depicted in FIG. 20), e.g., a first host cell population comprising an anaerovector, the method including introducing a genetic element (e.g., such as those described herein) into the host cells and culturing the host cells under conditions suitable for production of the anaerovector. In some embodiments, the method further includes introducing a helper, e.g., a helper virus, into the host cells. In some embodiments, the introducing includes transfection (e.g., chemical transfection) or electroporation of the host cells with the anaerovector.
[0037] In one aspect, the invention features a method of making an anaerovector, including providing a host cell, e.g., a first host cell or producer cell (e.g., such as that shown in FIG. 20), including an anaerovector, e.g., one described herein, and purifying the anaerovector from the host cell. In some embodiments, the method further includes, prior to the providing step, contacting the host cell with an anaerovector, e.g., one described herein, and incubating the host cell under conditions suitable for production of the anaerovector. In some embodiments, the host cell is a first host cell or producer cell described in the above method of making a host cell. In some embodiments, purifying the anaerovector from the host cell includes lysing the host cell.
[0038] In some embodiments, the method further comprises a second step of contacting the anaerovector produced by the first host cell or producer cell with a second host cell, e.g., a permissive cell (e.g., as shown in FIG. 20), e.g., a population of second host cells. In some embodiments, the method further comprises incubating the second host cell under conditions suitable for production of the anaerovector. In some embodiments, the method further comprises purifying the anaerovector from the second host cell, e.g., thereby producing an anaerovector seed population. In some embodiments, at least about 2-100 times more anaerovector is produced from the population of second host cells compared to that from the population of first host cells. In some embodiments, purifying the anaerovector from the second host cell comprises lysing the second host cell. In some embodiments, the method further comprises contacting the anaerovector produced by the second host cell with a third host cell, e.g., a permissive cell (e.g., as shown in FIG. 20), e.g., a population of third host cells. In some embodiments, the method further comprises incubating a third host cell under conditions suitable for production of the anaerovector. In some embodiments, the method comprises purifying the anaerovector from the third host cell, e.g., thereby producing an anaerovector stock population. In some embodiments, purifying the anaerovector from the third host cell comprises lysing the third host cell. In some embodiments, at least about 2-100 fold more anaerovector is produced from the population of third host cells compared to that from the population of second host cells.
[0039] In some embodiments, the host cells are grown in a medium suitable for promoting cell growth. In certain embodiments, once the host cells or helper cells have grown sufficiently (e.g., to a suitable cell density), the medium may be replaced with a medium suitable for production of the anaerovector by the host cells or helper cells. In some embodiments, the anaerovector produced by the host cells is separated from the host cells (e.g., by lysing the host cells) prior to contacting with a second host cell. In some embodiments, the anaerovector produced by the host cells is contacted with a second host cell without an intervening purification step.
[0040] In one aspect, the invention features a method of making a pharmaceutical anaerovector preparation, the method including the steps of: (a) making an anaerovector preparation as described herein; (b) evaluating the preparation (e.g., a pharmaceutical anaerovector preparation, an anaerovector seed population, or an anaerovector stock population) for one or more pharmaceutical quality control parameters, e.g., identity, purity, titer, potency (e.g., in genome equivalents per anaerovector particle), and / or nucleic acid sequences from genetic elements contained in the anaerovector; and (c) formulating the preparation for pharmaceutical use for evaluation that it meets predetermined criteria, e.g., meets pharmaceutical specifications. In some embodiments, the step of evaluating the identity includes evaluating (e.g., confirming) sequences of genetic elements of the anaerovector, e.g., sequences encoding effectors. In some embodiments, the step of assessing purity includes assessing the amount of impurities, such as mycoplasma, endotoxins, host cell nucleic acids (e.g., host cell DNA and / or host cell RNA), animal-derived impurities (e.g., serum albumin or trypsin), replicative causative agents (RCA), such as replicative viruses or unwanted anaerovectors (e.g., anaerovectors other than the desired anaerovector, e.g., synthetic anaerovectors described herein), free viral capsid proteins, adventitious materials, and aggregates. In some embodiments, the step of assessing potency includes assessing the ratio of functional and non-functional (e.g., infectious and non-infectious) anaerovectors in the preparation (e.g., by HPLC, etc.). In some embodiments, the step of assessing potency includes assessing the level of anaerovector function detectable in the preparation (e.g., expression and / or function or genomic equivalent of effectors encoded therein). In some embodiments, the impurities include residual denaturants (e.g., urea) or cellular substituents (e.g., proteasomes or ferritin).
[0041] In some embodiments, the formulated preparation is substantially free of pathogens, host cell contaminants or impurities; has a predetermined level of non-infectious particles or a predetermined ratio of particles:infectious units (e.g., <300:1, <200:1, <100:1, or <50:1). In some embodiments, multiple anaerovectors can be produced in a single batch. In some embodiments, the levels of anaerovectors produced in a batch can be assessed (e.g., individually or together).
[0042] In one aspect, the invention features a method of making a pharmaceutical anaero-VLP preparation, the method including (a) making an anaero-VLP preparation as described herein, (b) evaluating the preparation (e.g., a pharmaceutical anaero-VLP preparation, an anaero-VLP seed population, or an anaero-VLP stock population) for one or more pharmaceutical quality control parameters, e.g., identity, purity, potency, efficacy, and (c) formulating the preparation for pharmaceutical use if the evaluation meets predetermined criteria, e.g., meets pharmaceutical specifications. In some embodiments, evaluating purity includes evaluating the amount of impurities, e.g., mycoplasma, endotoxins, host cell nucleic acids (e.g., host cell DNA and / or host cell RNA), animal-derived process impurities (e.g., serum albumin or trypsin), replication-competent agents (RCA), e.g., replication-competent viruses or undesired VLPs (e.g., anaeroVLPs other than desired anaeroVLPs, e.g., synthetic anaeroVLPs as described herein), free viral capsid proteins, adventitious agents, and aggregates. In some embodiments, evaluating potency includes evaluating the ratio of functional to non-functional (e.g., infectious to non-infectious) anaeroVLPs in the preparation (e.g., as assessed by HPLC). In some embodiments, evaluating potency includes evaluating the level of detectable anaeroVLP function (e.g., expression and / or function or genomic equivalent of an effector encoded therein) in the preparation. In some embodiments, impurities include residual denaturants (eg, urea) or cellular substitutes (eg, proteasomes or ferritin).
[0043] In some embodiments, the formulated preparation is substantially free of pathogens, host cell contaminants or impurities; has a predetermined level of non-infectious particles or a predetermined particle:infectious unit ratio (e.g., <300:1, <200:1, <100:1, or <50:1). In some embodiments, multiple anelloVLPs can be produced in a single batch. In some embodiments, the level of anelloVLPs produced in a batch can be assessed (e.g., individually or together).
[0044] In one aspect, the present invention provides a method for producing a pharmaceutical composition comprising: (i) a first nucleic acid molecule comprising a nucleic acid sequence of a genetic element of an anaerovector as described herein; and (ii) optionally, a second nucleic acid molecule encoding one or more of the amino acid sequences selected from ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, or ORF1 / 2, as listed in any one of Tables A1 to A26, or an amino acid sequence having at least about 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity thereto. The present invention features a host cell comprising:
[0045] In one aspect, the invention features a reaction mixture including an annelovector described herein and a helper virus, where the helper virus includes a polynucleotide, e.g., a polynucleotide encoding an outer part protein (e.g., an outer part protein having the ability to bind to an outer part protein binding sequence and, optionally, a lipid envelope), a polynucleotide encoding a replication protein (e.g., a polymerase), or any combination thereof.
[0046] In some embodiments, the anaerovector (e.g., a synthetic anaerovector) is isolated, e.g., isolated from the host cell and / or isolated from other components in the solution (e.g., the supernatant). In some embodiments, the anaerovector (e.g., a synthetic anaerovector) is purified, e.g., from the solution (e.g., the supernatant). In some embodiments, the anaerovector is concentrated in the solution relative to other components in the solution.
[0047] In some embodiments of any of the foregoing anaerovectors, compositions, or methods, providing the anaerovector comprises isolating (e.g., harvesting) the anaerovector from a composition comprising an anaerovector-producing cell, such as those described herein. In other embodiments, providing the anaerovector comprises obtaining the anaerovector or a preparation thereof, e.g., from a third party.
[0048] In some embodiments of any of the above anaerovectors, anaerovectors, compositions or methods, the genetic element comprises an anaerovector genome, e.g., as identified by the methods described in Example 9. In embodiments, the anaerovector genome is an anaerovector genome capable of self-replication and / or self-amplification. In some embodiments, the anaerovector genome does not have the ability to self-replicate and / or self-amplify. In some embodiments, the anaerovector genome is capable of replicating and / or undergoing amplification in trans, e.g., in the presence of a helper, e.g., a helper virus.
[0049] Additional features of any of the annelovectors, annelovLPs, compositions or methods described above include one or more of the embodiments listed below.
[0050] Those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, many equivalents to the specific embodiments of the invention described herein which are intended to be encompassed by the embodiments recited below.
[0051] Enumerated Embodiments 1. A proteinaceous outer portion comprising about 40 to 80 (e.g., about 60), 100 to 140 (e.g., about 120), or 160 to 200 (e.g., about 180) copies of an anellovirus ORF1 molecule. A particle comprising: (i) does not contain (e.g., does not encapsulate) polynucleotides (e.g., as determined using a nuclease protection assay as described herein); (ii) does not contain (e.g., does not encapsulate) polynucleotides greater than 1000, 500, 200, or 100 nucleotides in length; or (iii) contains less than about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 40, 50, 60, 70, 80, 90, 100, 150, 200, 250, 300, 400, 500, 600, 700, 800, 900, or 1000 nucleotides. particle.
[0052] 2. The particle of embodiment 1, wherein the anellovirus ORF1 molecule comprises an ORF1 domain and an exogenous surface moiety.
[0053] 3. The particle of embodiment 1, wherein the anellovirus ORF1 molecule is attached to the exogenous surface moiety by non-covalent incorporation or by a covalent bond other than a peptide bond.
[0054] 4. The particle of embodiment 1, wherein the anellovirus ORF1 molecule does not contain a structural arginine-rich domain.
[0055] 5. The particle of embodiment 1, which is a virus-like particle (VLP).
[0056] 6. (a) a proteinaceous outer portion comprising about 40-80 (e.g., about 60), 100-140 (e.g., about 120), or 160-200 (e.g., about 180) copies of an anellovirus ORF1 molecule and an exogenous surface portion; and (b) a genetic element comprising a heterologous nucleic acid sequence encoding an exogenous effector. Particles containing.
[0057] 7. A proteinaceous outer portion comprising an anellovirus ORF1 molecule, the ORF1 molecule comprising an ORF1 domain and an exogenous surface portion. A particle comprising: One or more of the following: a) the exogenous surface moiety is selected from a receptor, a ligand, an antibody molecule (e.g., an scFv), an antigen (e.g., a viral, bacterial, fungal, or parasitic antigen) an adjuvant (e.g., a TLR agonist, e.g., bacterial flagellin); b) the ORF1 molecule contains a hypervariable region (HVR); c) the particle contains a genetic element encoding a peptide or polypeptide that boosts the immune response (e.g., an adjuvant, a TCR agonist (e.g., bacterial flagellin)); d) the exogenous surface portion is 1-5, 5-10, 10-20, 20-50, 50-100, 100-200, 200-500, or 500-1000 amino acids in length; e) a polypeptide linker region is located between the exogenous surface portion and the ORF1 molecule; f) the particle comprises 1-2, 2-5, 5-10, 10-20, 20-40, 40-60, 60-80, 80-100, 100-125, 125-150, 150-175, 175-200, 200-225, 225-250, 250-275, or 275-300 copies of the exogenous surface moiety; g) the proteinaceous exo-portion comprises (i) a plurality of ORF1 molecules lacking exogenous surface moieties (e.g., wild-type ORF1 molecules) and (ii) a plurality of ORF1 molecules comprising exogenous surface moieties, optionally with a ratio of (i):(ii) of 10:1 to 5:1, 5:1 to 2:1, 2:1 to 1:2, 1:2 to 1:5, or 1:5 to 1:10; and / or h) the particle further comprises a second exogenous surface moiety; particle.
[0058] 8. The particle of embodiment 7, wherein the exogenous surface portion is located at an insertion point between the N-terminal portion of the ORF1 domain and the C-terminal portion of the ORF1 domain.
[0059] 9. The particle of embodiment 8, wherein the insertion point is in the HVR.
[0060] 10. A particle according to any one of embodiments 7 to 9, further comprising a genetic element comprising a heterologous nucleic acid sequence encoding an exogenous effector.
[0061] 11. A particle according to any one of embodiments 7 to 10, which does not contain (e.g., is not encapsulated in) a polynucleotide, or does not contain (e.g., is not encapsulated in) a polynucleotide that is more than 1000, 500, 200, or 100 nucleotides in length, or which contains less than about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 40, 50, 60, 70, 80, 90, 100, 150, 200, 250, 300, 400, 500, 600, 700, 800, 900, or 1000 nucleotides in length.
[0062] 12. A proteinaceous outer portion comprising an anellovirus ORF1 molecule and an exogenous surface moiety that is covalently attached to the ORF1 molecule by a bond other than a peptide bond. Particles containing.
[0063] 12a. The particle of embodiment 12, wherein the exogenous surface moiety is linked to an NHS moiety and the exogenous surface moiety is bound to the ORF1 molecule via the NHS moiety.
[0064] 13. The particle of embodiment 12, wherein a non-polypeptide linker is located between the exogenous surface moiety and the ORF1 molecule.
[0065] 14. The particle of embodiment 13, wherein the non-polypeptide linker comprises a click bond.
[0066] 14a. The particle of embodiment 13, wherein the non-polypeptide linker is produced by a click reaction between a DBCO moiety and an azide moiety.
[0067] 14b. The particle of embodiment 14a, wherein the DBCO moiety is attached to the anellovirus ORF1 molecule via the NHS moiety prior to the click reaction.
[0068] 14c. The particle of embodiment 14a or 14b, wherein the azide moiety is attached to the exogenous surface moiety via an NHS moiety prior to the Click reaction.
[0069] 14c1. The particle of embodiment 14b or 14c, wherein the NHS moiety of the DBCO moiety is linked to a lysine residue on the surface of the anellovirus ORF1 molecule.
[0070] 14c2. The particle of any one of embodiments 14b-14c1, wherein the NHS portion of the azide moiety is attached to a lysine residue on the surface of the exogenous surface moiety.
[0071] 14d. The particle of embodiment 14a, wherein the DBCO moiety is attached to the exogenous surface moiety via the NHS moiety prior to the click reaction.
[0072] 14e. The particle of embodiment 14a or 14d, wherein the azide moiety is attached to the anellovirus ORF1 molecule via the NHS moiety prior to the click reaction.
[0073] 14f. The particle of embodiment 14d or 14e, wherein the NHS moiety of the DBCO moiety is linked to a lysine residue on the surface of the exogenous surface moiety.
[0074] 14g. A particle described in any one of embodiments 14d to 14f, wherein the NHS portion of the azide moiety is linked to a lysine residue on the surface of the anellovirus ORF1 molecule.
[0075] 15. A proteinaceous outer portion comprising an anellovirus ORF1 molecule and an exogenous surface portion that is non-covalently bound to the ORF1 molecule. Particles containing.
[0076] 16. The particle of embodiment 15, wherein the ORF1 molecule comprises an exogenous binding domain (e.g., MS2 coat protein or avidin) and the exogenous surface moiety comprises a cognate binding moiety that binds the exogenous binding domain (e.g., MS2 hairpin or biotin).
[0077] 17. A particle according to any one of embodiments 12 to 16, wherein the exogenous surface moiety comprises a polypeptide.
[0078] 18. A particle according to any one of embodiments 12 to 17, wherein the exogenous surface moieties comprise small molecules or nucleic acid molecules (e.g., polynucleotides).
[0079] 19. A particle described in any one of the preceding, wherein the ratio of ORF1 molecules to exogenous surface moieties is about 60:1 to 30:1, 30:1 to 20:1, 20:1 to 10:1, or 10:1 to 1:1.
[0080] 20. A particle according to any one of embodiments 1 to 19, wherein the antibody molecule is a bispecific antibody molecule.
[0081] 21. A bispecific antibody molecule comprising: a first antigen-binding domain that binds to a first antigen on a first type of host cell; and a second antigen-binding domain that binds to a second antigen on a second type of host cell. 21. The particle of embodiment 20, comprising:
[0082] 22. A particle according to any one of embodiments 1 to 21, which has the ability to enter a target cell, for example by endocytosis.
[0083] 23. The particle of embodiment 22, wherein the exogenous surface moiety binds to a cognate moiety on a target cell.
[0084] 24. The particle according to embodiment 22, wherein the particle comprises a genetic element encoding an exogenous effector to be delivered inside the target cell.
[0085] 25. A particle according to any one of the preceding embodiments, wherein the genetic element is encapsulated within a proteinaceous outer part.
[0086] 26. A particle according to any one of the preceding embodiments, which does not contain a polynucleotide or does not contain a polynucleotide greater than 1000, 500, 200, or 100 nucleotides in length.
[0087] 27. The anellovirus ORF1 molecule is (b) a first region comprising an anellovirus ORF1 structural jellyroll region, e.g., an anellovirus ORF1 structural jellyroll region sequence described herein, having at least 30% (e.g., at least about 30, 35, 40, 50, 60, 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity thereto, or a sequence comprising at least six β strands; (c) a second region comprising an amino acid sequence having at least 30% (e.g., at least about 30, 35, 40, 50, 60, 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to an anellovirus ORF1 structural N22 domain, e.g., an anellovirus ORF1 structural N22 domain sequence described herein; and (d) a third region comprising an amino acid sequence having at least 30% (e.g., at least about 30, 35, 40, 50, 60, 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to an anellovirus ORF1 structural C-terminal domain (CTD), e.g., an anellovirus ORF1 CTD sequence described herein. including; and The anellovirus ORF1 molecule comprises an anellovirus ORF1 structural arginine-rich region, e.g., a sequence of at least about 40 amino acids in which at least 60%, 70%, or 80% are basic residues (e.g., arginine, lysine, or a combination thereof); A particle according to any one of embodiments 1 to 26.
[0088] 28. A preparation comprising particles according to any one of embodiments 1 to 27.
[0089] 29. 10 mg / kg of subject to which the composition is to be administered 10 ~1014 Less than (e.g., 10 10 ~10 11 , 10 11 ~10 12 , 10 12 ~10 13 , or 10 13 ~10 14 29. The preparation of embodiment 28, comprising a nucleic acid molecule (e.g., a genetic element, e.g., of an anaerovector as described herein) equivalent to less than 1000000000 viral genome (e.g., as determined by qPCR or by measuring optical density).
[0090] 30. (b) a first region comprising an anellovirus ORF1 structural jellyroll region, e.g., an anellovirus ORF1 structural jellyroll region sequence described herein having at least 30% (e.g., at least about 30, 35, 40, 50, 60, 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity thereto, or a sequence comprising at least six β strands; (c) a second region comprising an amino acid sequence having at least 30% (e.g., at least about 30, 35, 40, 50, 60, 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to an anellovirus ORF1 structural N22 domain, e.g., an anellovirus ORF1 structural N22 domain sequence described herein; and (d) a third region comprising an amino acid sequence having at least 30% (e.g., at least about 30, 35, 40, 50, 60, 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to an anellovirus ORF1 structural C-terminal domain (CTD), e.g., an anellovirus ORF1 CTD sequence described herein. and A polypeptide that does not include an anellovirus ORF1 structural arginine-rich region, e.g., a sequence of at least about 40 amino acids in which at least 60%, 70%, or 80% are basic residues (e.g., arginine, lysine, or a combination thereof).
[0091] 31. A nucleic acid molecule encoding a polypeptide according to embodiment 30.
[0092] 32. A particle comprising a proteinaceous outer part comprising an anellovirus ORF1 molecule, the ORF1 molecule comprising a proteinaceous outer part comprising an ORF1 domain and an exogenous surface domain, A particle produced by contacting a plurality of anellovirus ORF1 molecules in a cell-free solution under conditions suitable for the formation of a proteinaceous outer portion comprising a plurality of anellovirus ORF1 molecules.
[0093] 33. The particle of embodiment 32, which does not contain (e.g., is not encapsulated in) a polynucleotide or does not contain (e.g., is not encapsulated in) a polynucleotide that is more than 1000, 500, 200, or 100 nucleotides in length.
[0094] 34. A method for making particles, comprising: contacting a plurality of anellovirus ORF1 molecules in a cell-free solution under conditions suitable for the formation of a proteinaceous outer portion comprising the plurality of anellovirus ORF1 molecules. Includes; How to create particles with it.
[0095] 35. A method for regulating the biological activity of a cell, comprising: Contacting a cell with a particle according to any one of embodiments 1 to 34. Includes; A method wherein the cell comprises a moiety on its surface that binds to the exogenous surface moiety of the particle.
[0096] 36. A method for targeting a particle to a cell, comprising: Contacting a cell with a particle according to any one of embodiments 1 to 35. Includes; A method wherein the cell comprises a moiety on its surface that binds to the exogenous surface moiety of the particle.
[0097] 37. (i) The structural jelly-roll region of the anellovirus ORF1 molecule; (ii) the structural N22 domain of the anellovirus ORF1 molecule; and (iii) A portion of the structural C-terminal domain (CTD) of an anellovirus ORF1 molecule, the portion including a deletion of about 20 to 30, 30 to 40 (e.g., about 37), 40 to 50 (e.g., about 55), 50 to 60, 60 to 70, 70 to 80, 80 to 90, 90 to 100, 100 to 110, 110 to 120, 120 to 130 (e.g., about 129), 130 to 140 (e.g., about 131), 140 to 150 (e.g., about 148), or 150 to 160 (e.g., about 155) amino acids at the C-terminal end of the structural CTD compared to the corresponding wild-type structural CTD of the anellovirus ORF1 molecule. (e.g., from the N-terminus to the C-terminus).
[0098] 38. (i) optionally, a first portion of a structural jellyroll region of an anellovirus ORF1 molecule (e.g., including a β-strand BH of the structural jellyroll region); (ii) a first portion of the P1 domain of an anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iii) the P2 domain of the anellovirus ORF1 molecule; (iv) a second portion of the P1 domain of anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (v) optionally, a second portion of the structural jellyroll region of the anellovirus ORF1 molecule (e.g., including β strand I of the structural jellyroll region); and (vi) A portion of the structural C-terminal domain (CTD) of an anellovirus ORF1 molecule, the portion comprising a deletion of about 20 to 30, 30 to 40 (e.g., about 37), 40 to 50 (e.g., about 55), 50 to 60, 60 to 70, 70 to 80, 80 to 90, 90 to 100, 100 to 110, 110 to 120, 120 to 130 (e.g., about 129), 130 to 140 (e.g., about 131), 140 to 150 (e.g., about 148), or 150 to 160 (e.g., about 155) amino acids at the C-terminal end of the structural CTD compared to the corresponding wild-type structural CTD of the anellovirus ORF1 molecule. (e.g., from the N-terminus to the C-terminus).
[0099] 39. (i) The structural jelly-roll region of the anellovirus ORF1 molecule; (ii) the structural N22 domain of the anellovirus ORF1 molecule; and (iii) a portion of the structural CTD of an anellovirus ORF1 molecule, the portion consisting of 1 to 5, 5 to 10 (e.g., about 7), 10 to 20, 30 to 40, 40 to 50, 50 to 60 (e.g., about 52), 60 to 70 (e.g., about 69), 70 to 80, 80 to 90 (e.g., about 88), 90 to 100 (e.g., about 93), or 100 to 110 amino acids from the most N-terminal side of the corresponding wild-type structural CTD of an anellovirus ORF1 molecule, or a sequence having at least 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto (e.g., from the N-terminus to the C-terminus).
[0100] 40. (i) optionally, a first portion of a structural jellyroll region of an anellovirus ORF1 molecule (e.g., including a β-strand BH of the structural jellyroll region); (ii) a first portion of the P1 domain of an anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iii) the P2 domain of the anellovirus ORF1 molecule; (iv) a second portion of the P1 domain of anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (v) optionally, a second portion of the structural jellyroll region of the anellovirus ORF1 molecule (e.g., including β strand I of the structural jellyroll region); and (vi) a portion of the structural CTD of an anellovirus ORF1 molecule, the portion consisting of 1 to 5, 5 to 10 (e.g., about 7), 10 to 20, 30 to 40, 40 to 50, 50 to 60 (e.g., about 52), 60 to 70 (e.g., about 69), 70 to 80, 80 to 90 (e.g., about 88), 90 to 100 (e.g., about 93), or 100 to 110 amino acids from the most N-terminal side of the corresponding wild-type structural CTD of an anellovirus ORF1 molecule, or a sequence having at least 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto (e.g., from the N-terminus to the C-terminus).
[0101] 41. (i) a structural jelly-roll region of an anellovirus ORF1 molecule that includes the structural jelly-roll sequence of a Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein (e.g., as described herein), or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; and (ii) a full-length structural N22 domain of an anellovirus ORF1 molecule that contains the structural N22 sequence of a Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto. A polypeptide comprising (e.g., from the N-terminus to the C-terminus): A polypeptide that does not contain the amino acid sequence of the full-length structural C-terminal domain of Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein.
[0102] 42. (i) optionally, an amino acid sequence of the β-strand BH of the structural jellyroll region of a Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein (e.g., as described herein), or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; (ii) the amino acid sequence of the full-length P1-1 domain of a Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; (iii) the amino acid sequence of the full-length P2 domain of a Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; (iv) the amino acid sequence of the full-length P1-2 domain of a Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; and (v) optionally, an amino acid sequence of beta strand I of the structural jellyroll region of a Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein (e.g., as described herein), or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto. A polypeptide comprising (e.g., from the N-terminus to the C-terminus): A polypeptide that does not contain the amino acid sequence of the full-length structural C-terminal domain of Ring2, Ring9, Ring10, Ring18, or Ring19 anellovirus ORF1 protein.
[0103] 43. The polypeptide of embodiment 41 or 42, comprising a fragment of the structural C-terminal domain.
[0104] 44. The polypeptide of embodiment 41 or 42, which does not contain a fragment of the structural C-terminal domain.
[0105] 45. The polypeptide of any one of embodiments 37-44, further comprising (e.g., at the C-terminal end of the C-terminal P1 subdomain sequence) a structural jellyroll I region of an anellovirus ORF1 molecule comprising a structural jellyroll I sequence as listed in Table A2, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0106] 46. A polypeptide according to any one of embodiments 37 to 45, which does not contain the N-terminal most 1, 2, 3, 4, 5, 6, 7, 8, 9 or 10 amino acid residues of the structural jellyroll BH region of anellovirus ORF1 molecule.
[0107] 47. A polypeptide according to any one of embodiments 1 to 46, further comprising a structural arginine-rich domain of an anellovirus ORF1 molecule, for example, the structural arginine-rich domain being N-terminal to the structural jelly-roll region.
[0108] 48. The polypeptide of any one of embodiments 37 to 47, further comprising an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to a structural arginine-rich region sequence described herein, or a sequence of at least about 40 amino acids, at least 60%, 70%, or 80% of which are basic residues.
[0109] 49. The polypeptide according to any one of embodiments 37 to 48, further comprising a deletion of the structural arginine-rich region of the anellovirus ORF1 molecule.
[0110] 50. The polypeptide according to any one of embodiments 37 to 49, comprising a deletion of 35 to 40, 40 to 45, 45 to 50, 50 to 55, 55 to 60, 60 to 65, or 65 to 70 amino acids (e.g., 37, 40, 43, 44, 47 49, 66, or 67 amino acids) compared to the corresponding wild-type arginine-rich region of anellovirus ORF1 molecule.
[0111] 51. A polypeptide according to any one of embodiments 37 to 50, which does not contain the structural arginine-rich region of the anellovirus ORF1 molecule.
[0112] 52. A polypeptide according to any one of embodiments 1 to 51, which does not contain a sequence of at least 60 consecutive amino acids, at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, or 75% (e.g., up to 80%) of which are basic residues.
[0113] 53. A polypeptide according to any one of embodiments 1 to 52, which does not contain a sequence of at least 60 consecutive amino acids, at least 40%, 45%, 50%, 55%, 60%, 65%, or 75% (e.g., up to 80%) of which are arginine residues.
[0114] 54. A polypeptide described in any one of embodiments 1 to 53, which does not contain a sequence of at least 60 consecutive amino acids, of which at least 2%, 3%, 4%, 5%, 10%, or 15% (e.g., up to 20%) are lysine residues.
[0115] 55. The polypeptide of any one of embodiments 1 to 54, which does not contain a sequence of at least 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, or 70 consecutive amino acids, of which at least 40%, 41%, 42%, 43%, 44%, 45%, 46%, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, or 70 amino acids are at least 40%, 41%, 42%, 43%, 44%, 45%, 46%, 47, 4 ...
[0116] 56. A polypeptide according to any one of the preceding embodiments, further comprising a structural hypervariable region (HVR) of an anellovirus ORF1 molecule (e.g., located between the structural jelly-roll region and the structural N22 domain).
[0117] 57. (i) the structural jelly-roll region of the anellovirus ORF1 molecule; and (ii) The structural N22 domain of the anellovirus ORF1 molecule and A polypeptide lacking the structural C-terminal domain (CTD) of the anellovirus ORF1 molecule.
[0118] 58. (i) optionally, a first portion of a structural jellyroll region of an anellovirus ORF1 molecule (e.g., including a β-strand BH of the structural jellyroll region); (ii) a first portion of the P1 domain of an anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iii) the P2 domain of the anellovirus ORF1 molecule; (iv) a second portion of the P1 domain of anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (v) optionally, a second portion of the structural jellyroll region of the anellovirus ORF1 molecule (e.g., comprising β strand I of the structural jellyroll region). and A polypeptide lacking the structural C-terminal domain (CTD) of the anellovirus ORF1 molecule.
[0119] 59. (i) the structural jellyroll region of an anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; and (ii) the structural N22 domain of an anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; and A polypeptide lacking the structural arginine-rich region of the anellovirus ORF1 molecule.
[0120] 60. (i) optionally, a first portion of a structural jellyroll region of an anellovirus ORF1 molecule (e.g., including a β-strand BH of the structural jellyroll region); (ii) a first portion of the P1 domain of an anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iii) the P2 domain of the anellovirus ORF1 molecule; (iv) a second portion of the P1 domain of anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (v) optionally, a second portion of the structural jellyroll region of the anellovirus ORF1 molecule (e.g., comprising β strand I of the structural jellyroll region). and A polypeptide lacking the structural arginine-rich region of the anellovirus ORF1 molecule.
[0121] 61. (i) a portion of the full-length structural jelly-roll region of an anellovirus ORF1 molecule, the portion not including the most N-terminal 1 to 10 (e.g., 7) amino acids of the full-length structural jelly-roll region; and (ii) The structural N22 domain of the anellovirus ORF1 molecule and A polypeptide lacking the structural arginine-rich region of the anellovirus ORF1 molecule.
[0122] 62. (i) a portion of the full-length β-stranded BH of the structural jelly-roll domain of an anellovirus ORF1 molecule, the portion not including the N-terminal most 1 to 10 (e.g., 7) amino acids of the full-length β-stranded BH of the structural jelly-roll domain; (ii) a first portion of the P1 domain of an anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iii) the P2 domain of the anellovirus ORF1 molecule; (iv) a second portion of the P1 domain of anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (v) optionally, a second portion of the structural jellyroll region of the anellovirus ORF1 molecule (e.g., comprising β strand I of the structural jellyroll region). and A polypeptide lacking the structural arginine-rich region of the anellovirus ORF1 molecule.
[0123] 63. The polypeptide of embodiment 61 or 62, wherein the anellovirus ORF1 molecule is a Ring2 ORF1 molecule.
[0124] 64. The polypeptide of embodiment 61 or 62, wherein the anellovirus ORF1 molecule is a Ring9 ORF1 molecule.
[0125] 65. The polypeptide of embodiment 61 or 62, wherein the anellovirus ORF1 molecule is a Ring10 ORF1 molecule.
[0126] 66. The polypeptide of embodiment 61 or 62, wherein the anellovirus ORF1 molecule is a Ring18 ORF1 molecule.
[0127] 67. The polypeptide of embodiment 61 or 62, wherein the anellovirus ORF1 molecule is a Ring19 ORF1 molecule.
[0128] 68. A polypeptide according to any one of embodiments 59 to 67, which does not contain the most N-terminal 1, 2, 3, 4, 5, 6, 7, 8, 9 or 10 amino acid residues of the structural jelly-roll region of anellovirus ORF1 molecule.
[0129] 69. (i) The structural jelly-roll region of the anellovirus ORF1 molecule; (ii) the structural N22 domain of the anellovirus ORF1 molecule; and (iii) an amino acid sequence that contains at least 50%, 60%, 70%, 80%, or 90% substitutions of basic amino acids compared to the structural arginine-rich region of the wild-type anellovirus ORF1 molecule; A polypeptide comprising:
[0130] 70.(i) optionally, a first portion of a structural jellyroll region of an anellovirus ORF1 molecule (e.g., including a β-strand BH of the structural jellyroll region); (ii) a first portion of the P1 domain of an anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iii) the P2 domain of the anellovirus ORF1 molecule; (iv) a second portion of the P1 domain of anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (v) optionally, a second portion of the structural jellyroll region of the anellovirus ORF1 molecule (e.g., including β strand I of the structural jellyroll region); and (vi) an amino acid sequence that contains at least 50%, 60%, 70%, 80%, or 90% basic amino acid substitutions compared to the structural arginine-rich region of the wild-type anellovirus ORF1 molecule; A polypeptide comprising:
[0131] 71. The polypeptide of embodiment 69 or 70, wherein (iii) comprises one or more (e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10) lysine to histidine mutations relative to the structural arginine-rich region of a wild-type anellovirus ORF1 molecule.
[0132] 72. The polypeptide of embodiment 69 or 71, comprising an amino acid sequence numbered 1721 in Table B4-2, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0133] 73. The polypeptide of embodiment 69, wherein the amino acid sequence of (iii) further comprises one or more substitutions at one or more acidic, hydrophobic, and / or nonpolar amino acids in the structural arginine-rich region of the wild-type anellovirus ORF1 molecule.
[0134] 74. The polypeptide of any one of embodiments 59 to 73, further comprising a structural CTD, for example C-terminal to the structural N22 domain.
[0135] 75. The polypeptide of any one of embodiments 59 to 74, further comprising a structural HVR, e.g., located between the structural jelly-roll region and the structural N22 domain.
[0136] 76. A polypeptide according to any one of embodiments 59 to 75, which does not substantially bind to DNA.
[0137] 77. The polypeptide of any one of embodiments 59 to 76, further comprising (e.g., at the N-terminus) an N-terminal portion of a capsid protein from a virus other than the Anellovirus genus, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; Optionally, the N-terminal region of a capsid protein from a virus other than the Anellovirus genus comprises at least 10, 20, 30, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 55, or 60 amino acids from the N-terminus of the capsid protein.
[0138] 78. The polypeptide of any one of embodiments 59 to 77, further comprising (e.g., at the N-terminus) a structural arginine-rich motif of a capsid protein from a virus other than the Anellovirus genus, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0139] 79. The polypeptide of embodiment 78, wherein the virus other than Anellovirus is Beak and Feather Disease Virus (BFDV).
[0140] 80. The polypeptide of any one of embodiments 59-79, further comprising (e.g., at the N-terminus) the amino acid sequence MWGTSNCACAKFQIRRRYARPYRRRHIRRYRRRRRHFRRRRFTTNR, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0141] 81. (i) a structural arginine-rich region of a first anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; (ii) a structural jellyroll region of a second anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; and (iii) the structural N22 domain of a second anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto. A polypeptide comprising (e.g., from the N-terminus to the C-terminus): A polypeptide, the sequence of (i) comprising at least one amino acid sequence difference compared to a structural arginine-rich region of a second anellovirus ORF1 molecule.
[0142] 82. (i) a structural arginine-rich region of a first anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; (ii) optionally, a first portion of a structural jellyroll region of a second anellovirus ORF1 molecule (e.g., including a β-strand BH of the structural jellyroll region); (iii) a first portion of the P1 domain of a second anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iv) the P2 domain of a second anellovirus ORF1 molecule; (v) a second portion of the P1 domain of a second anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (vi) optionally, a second portion of the structural jellyroll region of a second anellovirus ORF1 molecule (e.g., including β strand I of the structural jellyroll region). and A polypeptide, the sequence of (i) comprising at least one amino acid sequence difference compared to a structural arginine-rich region of a second anellovirus ORF1 molecule.
[0143] 83. The polypeptide of embodiment 89 or 90, wherein (i) comprises a structural arginine-rich region of a first anellovirus ORF1 molecule, or an amino acid sequence having at least 90% identity thereto.
[0144] 84. The polypeptide of embodiment 89 or 90, wherein (i) comprises a structural arginine-rich region of a first anellovirus ORF1 molecule, or an amino acid sequence having at least 95% identity thereto.
[0145] 85. The polypeptide of embodiment 89 or 90, wherein (i) comprises a structural arginine-rich region of a first anellovirus ORF1 molecule, or an amino acid sequence having at least 97% identity thereto.
[0146] 86. The polypeptide of embodiment 89 or 90, wherein (i) has 100% sequence identity with a structural arginine-rich region of the first anellovirus ORF1 molecule.
[0147] 87. The polypeptide of any one of embodiments 89-94, wherein the first anellovirus ORF1 molecule is Ring9 and the second anellovirus ORF1 molecule is Ring2.
[0148] 88. The polypeptide of any one of embodiments 89-95, wherein the first anellovirus ORF1 molecule is Ring2 and the second anellovirus ORF1 molecule is Ring9.
[0149] 89. (i) an N-terminal portion of a first anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto, the N-terminal portion of a first anellovirus ORF1 molecule having a length of 30 to 40, 40 to 50, 50 to 60, 60 to 70, 70 to 80, or 80 to 90 amino acids; and (ii) a C-terminal portion of a second anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto, the C-terminal portion of a second anellovirus ORF1 molecule having a length of 590 to 600, 600 to 610, 610 to 620, 620 to 630, 630 to 640, 640 to 650, 650 to 660, 660 to 670, 670 to 680, 680 to 690, 690 to 700, 700 to 710, 710 to 720, or 720 to 730 amino acids. and A polypeptide, the sequence of (i) comprising at least one amino acid sequence difference compared to a structural arginine-rich region of a second anellovirus ORF1 molecule.
[0150] 90. The polypeptide of embodiment 97, wherein the N-terminal portion of the first anellovirus ORF1 molecule comprises a structural arginine-rich domain.
[0151] 91. A polypeptide described in embodiment 97 or 98, wherein the N-terminal portion of the first anellovirus ORF1 molecule further comprises an N-terminal portion of a structural jelly-roll domain (e.g., having a length of 1 to 10, 10 to 20, 20 to 30, 30 to 40, or 40 to 50 amino acids).
[0152] 92. A polypeptide described in any one of embodiments 97 to 99, wherein the N-terminal portion of the first anellovirus ORF1 molecule further comprises one or more β strands of a structural jellyroll domain (e.g., β strands 1 and / or 2 of the structural jellyroll domain).
[0153] 93. A polypeptide described in any one of embodiments 97 to 100, wherein the C-terminal portion of the second anellovirus ORF1 molecule comprises a C-terminal portion of a structural jelly-roll domain (e.g., having a length of 100 to 110, 110 to 120, 120 to 130, 130 to 140, 140 to 150, 150 to 160, 160 to 170, 170 to 180, 180 to 190, or 190 to 200 amino acids).
[0154] 94. (i) a first portion of the structural jellyroll region of a first anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto; and (ii) a second portion of the structural jellyroll region of a second anellovirus ORF1 molecule, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto. and The sequences of (i) and (ii) both contain at least one amino acid sequence difference compared to the sequences of the structural jellyroll region of the first anellovirus ORF1 molecule and the second anellovirus ORF1 molecule, respectively.
[0155] 95. (i) the structural jelly-roll region of the anellovirus ORF1 molecule; and (ii) The structural N22 domain of the anellovirus ORF1 molecule and lacking the structural arginine-rich region of the anellovirus ORF1 molecule; and A polypeptide lacking the structural C-terminal domain of the anellovirus ORF1 molecule.
[0156] 96.(i) optionally, a first portion of a structural jellyroll region of an anellovirus ORF1 molecule (e.g., including a β-strand BH of the structural jellyroll region); (ii) a first portion of the P1 domain of an anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iii) the P2 domain of the anellovirus ORF1 molecule; (iv) a second portion of the P1 domain of anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (v) optionally, a second portion of the structural jellyroll region of the anellovirus ORF1 molecule (e.g., comprising β strand I of the structural jellyroll region). and lacking the structural arginine-rich region of the anellovirus ORF1 molecule; and A polypeptide lacking the structural C-terminal domain of the anellovirus ORF1 molecule.
[0157] 97. The polypeptide of any one of embodiments 1 to 96, which does not contain amino acids 2 to 45 of the amino acid sequence of Ring2 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0158] 98. The polypeptide of any one of embodiments 1 to 97, which does not contain amino acids 518 to 666 of the amino acid sequence of Ring2 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0159] 99. The polypeptide of any one of embodiments 1 to 98, which does not contain amino acids 538 to 666 of the amino acid sequence of Ring2 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0160] 100. The polypeptide of any one of embodiments 1 to 99, which does not contain amino acids 545 to 666 of the amino acid sequence of Ring2 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0161] 101. The polypeptide of any one of embodiments 1 to 100, which does not contain amino acids 594 to 666 of the amino acid sequence of Ring2 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0162] 102. The polypeptide of any one of embodiments 1 to 101, which does not contain amino acids 611 to 666 of the amino acid sequence of Ring2 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0163] 103. The polypeptide of any one of embodiments 1 to 102, which does not contain amino acids 630 to 666 of the amino acid sequence of Ring2 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0164] 104. The polypeptide of any one of embodiments 1 to 103, which does not contain amino acids 2 to 45 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0165] 105. The polypeptide of any one of embodiments 1 to 104, which does not contain amino acids 2 to 51 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0166] 106. The polypeptide of any one of embodiments 1 to 105, which does not contain amino acids 542 to 672 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0167] 107. The polypeptide of any one of embodiments 1 to 106, which does not contain amino acids 552 to 672 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0168] 108. The polypeptide of any one of embodiments 1 to 107, which does not contain amino acids 557 to 672 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0169] 109. The polypeptide of any one of embodiments 1 to 108, which does not contain amino acids 560 to 672 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0170] 110. The polypeptide of any one of embodiments 1 to 109, which does not contain amino acids 566 to 672 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0171] 111. The polypeptide of any one of embodiments 1 to 110, which does not contain amino acids 569 to 672 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0172] 112. The polypeptide of any one of embodiments 1 to 111, which does not contain amino acids 610 to 672 of the amino acid sequence of Ring10 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0173] 113. The polypeptide of any one of embodiments 1 to 112, which does not contain amino acids 2 to 69 of the amino acid sequence of Ring18 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0174] 114. The polypeptide of any one of embodiments 1 to 113, which does not contain amino acids 582 to 736 of the amino acid sequence of Ring18 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0175] 115. The polypeptide of any one of embodiments 1 to 114, which does not contain amino acids 651 to 736 of the amino acid sequence of Ring18 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0176] 116. The polypeptide of any one of embodiments 1 to 115, which does not contain amino acids 2 to 49 of the amino acid sequence of Ring19 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0177] 117. The polypeptide of any one of embodiments 1 to 116, which does not contain amino acids 527 to 655 of the amino acid sequence of Ring19 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0178] 118. The polypeptide of any one of embodiments 1 to 117, which does not contain amino acids 537 to 655 of the amino acid sequence of Ring19 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0179] 119. The polypeptide of any one of embodiments 1 to 118, which does not contain amino acids 583 to 655 of the amino acid sequence of Ring19 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0180] 120. The polypeptide of any one of embodiments 1 to 119, which does not contain amino acids 600 to 655 of the amino acid sequence of Ring19 ORF1 protein as described herein, or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0181] 121.(i) mutant ORF1 structural jelly-roll region; and (ii) The structural N22 domain of the anellovirus ORF1 molecule A polypeptide comprising (e.g., from the N-terminus to the C-terminus): A polypeptide, wherein the mutant ORF1 structural jellyroll region comprises one or more mutations (e.g., at least 2, 3, 4, 5, 6, 7, 8, 9, or 10 mutations) in a beta strand compared to the amino acid sequence of a wild-type anellovirus ORF1 structural jellyroll region.
[0182] 122.(i) mutant ORF1 structural jelly-roll region; and (ii) a first portion of the P1 domain of an anellovirus ORF1 molecule (e.g., a P1-1 domain as described herein); (iii) the P2 domain of the anellovirus ORF1 molecule; (iv) a second portion of the P1 domain of anellovirus ORF1 molecule (e.g., a P1-2 domain as described herein); (v) optionally, a second portion of the structural jellyroll region of the anellovirus ORF1 molecule (e.g., comprising β strand I of the structural jellyroll region). and A polypeptide, wherein the mutant ORF1 structural jellyroll region comprises one or more mutations (e.g., at least 2, 3, 4, 5, 6, 7, 8, 9, or 10 mutations) in a beta strand compared to the amino acid sequence of a wild-type anellovirus ORF1 structural jellyroll region.
[0183] 123. The polypeptide of embodiment 121 or 122, wherein the one or more mutations in the β-strand include one or more mutations (e.g., at least 2, 3, 4, 5, 6, 7, 8, 9, or 10 mutations) of a basic residue in the amino acid sequence of the wild-type anellovirus ORF1 structural jelly-roll region to, for example, a residue other than a basic residue (e.g., a non-polar residue or an acidic residue).
[0184] 124. The polypeptide according to any one of embodiments 121 to 123, wherein the β-strand is selected from β-strands B, D, G, or I of the wild-type anellovirus ORF1 structural jellyroll region.
[0185] 125. A polypeptide according to any one of embodiments 121 to 124, wherein one or more mutations reduce binding of the polypeptide to a nucleic acid molecule compared to an otherwise similar polypeptide comprising a wild-type anellovirus ORF1 structural jelly-roll region.
[0186] 126.(i) optionally, a structural arginine-rich region of anellovirus ORF1 (e.g., a full-length arginine-rich region or a portion of the structural arginine-rich region); (ii) the structural jelly-roll region of the anellovirus ORF1 molecule; (iii) the P1 domain of the anellovirus ORF1 molecule; (iv) the P2 domain of anellovirus ORF1 molecule, and (v) optionally, the structural C-terminal domain (CTD) of the anellovirus ORF1 molecule (e.g., a full-length structural CTD or a portion of the structural CTD). A polypeptide comprising (e.g., from the N-terminus to the C-terminus): Where: (a) is from an anellovirus in which the P1 domain is distinct from one or more (e.g., one, two, three, or four) of the structural arginine-rich region, the structural jelly-roll region, the P2 domain, and / or the structural CTD; (b) the P2 domain is from an anellovirus that is distinct from one or more (e.g., one, two, three, or four) of the structural arginine-rich region, the structural jelly-roll region, the P1 domain, and / or the structural CTD; or (c) the P1 domain and the P2 domain are from a different anellovirus having one or more (e.g., one, two, or three) of the structural arginine-rich region, the structural jelly-roll region, and / or the structural CTD, and optionally the P1 domain and the P2 domain are from the same anellovirus; Polypeptides.
[0187] 127.(i) Optionally, a structural arginine-rich region of an anellovirus ORF1 molecule (e.g., a full-length arginine-rich region or a portion of the structural arginine-rich region); (ii) the structural jelly-roll region of the anellovirus ORF1 molecule; (iii) the P1 domain of the anellovirus ORF1 molecule; (iv) a P2 domain of a viral capsid protein, wherein the viral capsid protein is not an anellovirus ORF1 molecule; and (v) optionally, the structural C-terminal domain (CTD) of the anellovirus ORF1 molecule (e.g., a full-length structural CTD or a portion of the structural CTD). (e.g., from the N-terminus to the C-terminus).
[0188] 128.(i) optionally, a structural arginine-rich region of anellovirus ORF1 (e.g., a full-length arginine-rich region or a portion of the structural arginine-rich region); (ii) the structural jelly-roll region of the anellovirus ORF1 molecule; (iii) a P1 domain of a viral capsid protein, wherein the viral capsid protein is not an anellovirus ORF1 molecule; (iv) the P2 domain of anellovirus ORF1 molecule, and (v) optionally, the structural C-terminal domain (CTD) of the anellovirus ORF1 molecule (e.g., a full-length structural CTD or a portion of the structural CTD). (e.g., from the N-terminus to the C-terminus).
[0189] 129. The polypeptide of embodiment 127 or 128, wherein the viral capsid protein is a hepatitis virus capsid protein (e.g., hepatitis E virus capsid protein).
[0190] 131. (i) A portion of a viral capsid protein (e.g., an N-terminal portion), where the viral capsid protein is not from an anellovirus; and (ii) the P2 domain of an anellovirus ORF1 molecule (e.g., a wild-type anellovirus ORF1 protein), or an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% amino acid sequence identity thereto. (e.g., from the N-terminus to the C-terminus).
[0191] 132. The polypeptide of embodiment 131, wherein the viral capsid protein is a hepatitis virus capsid protein (e.g., Hepatitis E virus (HEV) capsid protein), or a protein having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% amino acid sequence identity thereto.
[0192] 133. A portion of the viral capsid protein has the amino acid sequence [ka] 133. The polypeptide of embodiment 131 or 132, comprising an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% amino acid sequence identity thereto.
[0193] 134. The P2 domain of the amino acid sequence [ka] or a polypeptide described in any one of embodiments 131 to 133, comprising an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% amino acid sequence identity thereto.
[0194] 137. The P2 domain of the amino acid sequence [ka] 137. The polypeptide of embodiment 135 or 136, comprising an amino acid sequence having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% amino acid sequence identity thereto.
[0195] 138. The polypeptide according to any one of embodiments 131 to 137, further comprising one or more additional portions of viral capsid proteins (eg, at the C-terminal end of the polypeptide).
[0196] 139. The polypeptide of embodiment 138, wherein the additional portion of the viral capsid protein comprises the amino acid sequence HHHHH (e.g., at the C-terminal end of the polypeptide).
[0197] 140. A polypeptide according to any one of embodiments 126 to 139, wherein the amino acid sequence of the P1 domain is discontinuous (e.g., the amino acid sequence of the P2 domain is located between a first portion and a second portion of the amino acid sequence of the P1 domain).
[0198] 141.(i) The structural arginine-rich region of the anellovirus ORF1 molecule; (ii) the structural jelly-roll region of the anellovirus ORF1 molecule; (iii) the structural N22 domain of anellovirus ORF1 molecule, and / or (iv) The structural C-terminal domain of the anellovirus ORF1 molecule A polypeptide comprising one or more of (e.g., from the N-terminus to the C-terminus): the polypeptide further comprises the amino acid sequence EQI, e.g., the amino acid sequence SPTQIEQIYT (e.g., between the structural jelly-roll region and the structural N22 domain, e.g., in a hypervariable region (HVR) as described herein); and A polypeptide, wherein the anellovirus ORF1 molecule of (i) to (iv) comprises at least one difference compared to the Ring10 ORF1 protein.
[0199] 142.(i) The structural arginine-rich region of the anellovirus ORF1 molecule; (ii) the jellyroll BH strand subdomain of the anellovirus ORF1 molecule; (iii) the P1-1 subdomain of the anellovirus ORF1 molecule; (iv) the P1-2 subdomain of the anellovirus ORF1 molecule; (v) the jellyroll I-strand subdomain of an anellovirus ORF1 molecule, and / or (vi) The structural C-terminal domain of the anellovirus ORF1 molecule A polypeptide comprising one or more of (e.g., from the N-terminus to the C-terminus): the polypeptide further comprises the amino acid sequence EQI, e.g., the amino acid sequence SPTQIEQIYT (e.g., in the P2 domain as described herein) (e.g., between the P1-1 and P1-2 subdomains); and A polypeptide, wherein the anellovirus ORF1 molecule of (i) to (vi) comprises at least one difference compared to the Ring10 ORF1 protein.
[0200] 143. A polypeptide comprising a structural hypervariable region (HVR) having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity with a structural HVR sequence of Ring2 ORF1 protein; A polypeptide comprising one or more (e.g., one, two, or all three) amino acid substitutions selected from K357E, N358Q, and E359I, relative to the sequence of Ring2 ORF1 protein.
[0201] 144. A polypeptide comprising a P2 domain having at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity to the P2 domain sequence of Ring2 ORF1 protein; A polypeptide comprising one or more (e.g., one, two, or all three) amino acid substitutions selected from K357E, N358Q, and E359I, relative to the sequence of Ring2 ORF1 protein.
[0202] 145. The polypeptide of embodiment 143 or 144, wherein the polypeptide comprises all three of the substitutions selected from K357E, N358Q, and E359I.
[0203] 146. A method for concentrating a polypeptide according to any one of embodiments X1 to X3b, comprising: (a) providing a polypeptide (e.g., the polypeptide is comprised in anello VLP or particle); (b) contacting the polypeptide with a binding moiety (e.g., an antibody molecule) that binds to an epitope comprising the amino acid sequence EQI; and (c) enriching the material to which the binding moiety binds relative to material to which the binding moiety does not bind; Including, This results in a method for concentrating polypeptides.
[0204] 147: (i) a proteinaceous outer part comprising a polypeptide according to any one of embodiments 1 to 146; and (ii) a genetic element enclosed in a proteinaceous outer part, the genetic element comprising a sequence encoding an exogenous effector; An anellovector comprising:
[0205] 148. (i) a proteinaceous outer portion comprising a plurality of anellovirus ORF1 molecules, the anellovirus ORF1 molecules lacking part or all of a structural C-terminal domain (CTD); and (ii) a genetic element enclosed in a proteinaceous outer part, the genetic element comprising a sequence encoding an exogenous effector; An anellovector comprising:
[0206] 149. (i) a proteinaceous outer portion comprising a plurality of anellovirus ORF1 molecules, the anellovirus ORF1 molecules lacking some or all of a structural arginine-rich region; and (ii) a genetic element enclosed in a proteinaceous outer part, the genetic element comprising a sequence encoding an exogenous effector; An anellovector comprising:
[0207] 150. A composition comprising a plurality of anellovectors according to any one of embodiments S1 to X.
[0208] 151. A proteinaceous outer region comprising a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules lack part or all of the structural C-terminal domain (CTD). A particle comprising: Where: (i) does not contain (e.g., does not encapsulate) a polynucleotide (e.g., as determined using a nuclease protection assay as described herein); (ii) does not contain (e.g., does not encapsulate) polynucleotides greater than 1000, 500, 200, or 100 nucleotides in length; or (iii) contains less than about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 40, 50, 60, 70, 80, 90, 100, 150, 200, 250, 300, 400, 500, 600, 700, 800, 900, or 1000 nucleotides; particle.
[0209] 152. A proteinaceous outer region comprising a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules lack part or all of a structural arginine-rich region. A particle comprising: Where: (i) does not contain (e.g., does not encapsulate) a polynucleotide (e.g., as determined using a nuclease protection assay as described herein); (ii) does not contain (e.g., does not encapsulate) polynucleotides greater than 1000, 500, 200, or 100 nucleotides in length; or (iii) contains less than about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 40, 50, 60, 70, 80, 90, 100, 150, 200, 250, 300, 400, 500, 600, 700, 800, 900, or 1000 nucleotides; particle.
[0210] 153. A proteinaceous outer part comprising a plurality of anellovirus ORF1 molecules, the anellovirus ORF1 molecules comprising a polypeptide according to any one of embodiments 1 to 152. A particle comprising: Where: (i) does not contain (e.g., does not encapsulate) a polynucleotide (e.g., as determined using a nuclease protection assay as described herein); (ii) does not contain (e.g., does not encapsulate) polynucleotides greater than 1000, 500, 200, or 100 nucleotides in length; or (iii) contains less than about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 40, 50, 60, 70, 80, 90, 100, 150, 200, 250, 300, 400, 500, 600, 700, 800, 900, or 1000 nucleotides; particle.
[0211] 154. A particle according to any one of embodiments 151 to 153, wherein the proteinaceous outer part comprises about 40 to 80 (e.g., about 60), 100 to 140 (e.g., about 120), or 160 to 200 (e.g., about 180) copies of anellovirus ORF1 molecules.
[0212] 155. A particle according to any one of embodiments 151 to 154, further comprising an exogenous effector or a nucleic acid sequence encoding an exogenous effector.
[0213] 156. A composition comprising a plurality of particles according to any one of embodiments 151 to 155.
[0214] 157. A nucleic acid molecule encoding a polypeptide according to any one of embodiments 1 to 156.
[0215] 158. A method for delivering an exogenous effector to a cell, comprising contacting the cell with an anaerovector or particle described in any one of embodiments 1-157, or a particle (e.g., an anaerovector) comprising a polypeptide described in any one of embodiments 1-157, thereby delivering an exogenous effector to the cell.
[0216] 159. A method for delivering an exogenous effector to a subject, comprising administering to the subject an anaerovector or particle described in any one of embodiments 1-158, or a particle (e.g., an anaerovector) comprising a polypeptide described in any one of embodiments 1-158, thereby delivering an exogenous effector to the subject.
[0217] 160. A method for treating or preventing a disease or disorder in a subject, comprising administering to a subject in need thereof an anaerovector or particle described in any one of embodiments 1-159, or a particle (e.g., anellovector) comprising a polypeptide described in any one of embodiments 1-159, thereby treating or preventing the disease or disorder in the subject.
[0218] 161. A method for producing an anellovector, comprising: (a) providing a host cell, the host cell comprising: (i) a plurality of anellovirus ORF1 molecules, the anellovirus ORF1 molecules comprising a polypeptide according to any one of embodiments 1 to 160; and (ii) a genetic element comprising a sequence encoding an exogenous effector. Contains; and (b) maintaining the host cell under conditions permissive for the production of a proteinaceous outer portion comprising a plurality of anellovirus ORF1 molecules, the proteinaceous outer portion encapsulating the genetic element. Including, A method whereby one or more of the anaerovectors are produced from a host cell.
[0219] 162. A method for producing an anellovector, comprising: (a) providing a host cell, the host cell comprising: (i) a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules lack a portion or all of a structural C-terminal domain (CTD); and (ii) a genetic element comprising a sequence encoding an exogenous effector. Contains; and (b) maintaining the host cell under conditions permissive for the production of a proteinaceous outer portion comprising a plurality of anellovirus ORF1 molecules, the proteinaceous outer portion encapsulating the genetic element. Includes; A method whereby one or more of the anaerovectors are produced from a host cell.
[0220] 163. A method for producing an anellovector, comprising: (a) providing a host cell, the host cell comprising: (i) a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules lack some or all of a structural arginine-rich region; and (ii) a genetic element comprising a sequence encoding an exogenous effector. Contains; and (b) maintaining the host cell under conditions permissive for the production of a proteinaceous outer portion comprising a plurality of anellovirus ORF1 molecules, the proteinaceous outer portion encapsulating the genetic element. Includes; A method whereby one or more of the anaerovectors are produced from a host cell.
[0221] 164. The method of any one of embodiments 161 to 163, wherein providing a host cell comprising a plurality of anellovirus ORF1 molecules comprises maintaining the host cell under conditions permissive for expression of the anellovirus ORF1 molecules.
[0222] 165. A method for producing an anellovector, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules comprise a polypeptide of any one of embodiments 1-164; and optionally subjecting the mixture to denaturing conditions (e.g., providing a denaturing agent as part of the mixture or contacting the mixture with a denaturing agent), wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40-80 (e.g., about 60) copies of the ORF1 molecule; (b) subjecting the mixture to non-denaturing conditions (e.g., reducing the concentration of the denaturing agent to a level suitable for in vitro assembly (e.g., by dialysis) of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with the plurality of genetic elements under conditions suitable for assembling the anellovirus ORF1 molecules into one or more anellovectors, each encapsulating one or more of the genetic elements. The method includes:
[0223] 166. A method for producing an anellovector, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules lack some or all of a structural C-terminal domain (CTD); optionally subjecting the mixture to denaturing conditions (e.g., providing a denaturing agent as part of the mixture or contacting the mixture with a denaturing agent), wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40-80 (e.g., about 60) copies of the ORF1 molecule; (b) subjecting the mixture to non-denaturing conditions (e.g., reducing the concentration of the denaturing agent to a level suitable for in vitro assembly (e.g., by dialysis) of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with the plurality of genetic elements under conditions suitable for assembling the anellovirus ORF1 molecules into one or more anellovectors, each encapsulating one or more of the genetic elements. The method includes:
[0224] 167. A method for producing an anellovector, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules lack some or all of a structural arginine-rich region; optionally subjecting the mixture to denaturing conditions (e.g., providing a denaturing agent as part of the mixture or contacting the mixture with a denaturing agent), wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40-80 (e.g., about 60) copies of the ORF1 molecule; (b) subjecting the mixture to non-denaturing conditions (e.g., reducing the concentration of the denaturing agent to a level suitable for in vitro assembly (e.g., by dialysis) of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with the plurality of genetic elements under conditions suitable for assembling the anellovirus ORF1 molecules into one or more anellovectors, each encapsulating one or more of the genetic elements. The method includes:
[0225] 168. A method for producing an anelloVLP, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules comprise a polypeptide of any one of embodiments 1-167, and at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40-80 (e.g., about 60) copies of the ORF1 molecule; (b) subjecting the mixture to conditions suitable for the in vitro assembly of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with a plurality of effectors (e.g., exogenous effectors) under conditions suitable for assembling the anellovirus ORF1 molecule into one or more anelloVLPs, each encapsulating one or more of the effectors. The method includes:
[0226] 169. A method for producing anelloVLPs, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules lack a portion or all of a structural C-terminal domain (CTD), and at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained within particles comprising about 40 to 80 (e.g., about 60) copies of the ORF1 molecule; (b) subjecting the mixture to conditions suitable for the in vitro assembly of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with a plurality of effectors (e.g., exogenous effectors) under conditions suitable for assembling the anellovirus ORF1 molecule into one or more anelloVLPs, each encapsulating one or more of the effectors. The method includes:
[0227] 170. A method for producing anelloVLPs, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules, wherein the anellovirus ORF1 molecules lack some or all of a structural arginine-rich region, and at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained within particles comprising about 40 to 80 (e.g., about 60) copies of the ORF1 molecule; (b) subjecting the mixture to conditions suitable for the in vitro assembly of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with a plurality of effectors (e.g., exogenous effectors) under conditions suitable for assembling the anellovirus ORF1 molecule into one or more anelloVLPs, each encapsulating one or more of the effectors. The method includes:
[0228] 171. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 1 to 170, wherein the polypeptide or anellovirus ORF1 molecule comprises an exogenous surface moiety.
[0229] 172. The polypeptide, particle, nucleic acid molecule, or method of embodiment 171, wherein the exogenous surface moiety is fused to the N-terminus of the anellovirus ORF1 molecule.
[0230] 173. The polypeptide, particle, nucleic acid molecule, or method of embodiment 171, wherein the exogenous surface moiety is fused to the C-terminus of the anellovirus ORF1 molecule.
[0231] 174. The polypeptide, particle, nucleic acid molecule, or method of embodiment 171, wherein the exogenous surface moiety is inserted within the amino acid sequence of the anellovirus ORF1 molecule.
[0232] 175. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 172 to 174, wherein the anellovirus ORF1 molecule comprises a portion of the structural C-terminal domain (CTD) of the anellovirus ORF1 molecule, the portion of the structural CTD comprising a deletion of about 20 to 30, 30 to 40 (e.g., about 37), 40 to 50 (e.g., about 55), 50 to 60, 60 to 70, 70 to 80, 80 to 90, 90 to 100, 100 to 110, 110 to 120, 120 to 130 (e.g., about 129), 130 to 140 (e.g., about 131), 140 to 150 (e.g., about 148), or 150 to 160 (e.g., about 155) amino acids at the C-terminal end of the structural CTD compared to the corresponding wild-type structural CTD of the anellovirus ORF1 molecule.
[0233] 176. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 172 to 174, wherein the anellovirus ORF1 molecule is a portion of the structural CTD of the anellovirus ORF1 molecule, the portion consisting of 1 to 5, 5 to 10 (e.g., about 7), 10 to 20, 30 to 40, 40 to 50, 50 to 60 (e.g., about 52), 60 to 70 (e.g., about 69), 70 to 80, 80 to 90 (e.g., about 88), 90 to 100 (e.g., about 93), or 100 to 110 amino acids from the most N-terminal side of the corresponding wild-type structural CTD of the anellovirus ORF1 molecule, or a sequence having at least 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identity thereto.
[0234] 177. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 1 to 176, wherein the polypeptide or anellovirus ORF1 molecule comprises a detectable marker or effector (e.g., an exogenous effector).
[0235] 178. The polypeptide, particle, nucleic acid molecule, or method according to embodiment 177, wherein the detectable marker or effector is fused to the N-terminus of the anellovirus ORF1 molecule.
[0236] 179. The polypeptide, particle, nucleic acid molecule, or method of embodiment 177, wherein the detectable marker or effector is fused to the C-terminus of the anellovirus ORF1 molecule.
[0237] 180. The polypeptide, particle, nucleic acid molecule, or method according to embodiment 177, wherein a detectable marker or effector is inserted into the amino acid sequence of the anellovirus ORF1 molecule.
[0238] 181. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 177 to 180, wherein the detectable marker comprises an epitope tag, such as a His tag or a FLAG tag.
[0239] 182. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 177 to 181, wherein the detectable marker comprises a fluorescent protein (e.g., GFP).
[0240] 183. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 177 to 182, wherein the polypeptide or anellovirus ORF1 molecule comprises a protease recognition sequence (e.g., a 3C protease recognition sequence) between the detectable marker or effector and the remainder of the polypeptide or anellovirus ORF1 molecule.
[0241] 184. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 177 to 183, wherein the effector is a therapeutic effector (eg, a therapeutic polypeptide or a therapeutic nucleic acid molecule).
[0242] 185. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 1 to 184, wherein the polypeptide or anellovirus ORF1 molecule comprises at its N-terminus a methionine residue corresponding to the N-terminal methionine residue of the anellovirus structural arginine-rich region.
[0243] 186. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 185, wherein the anellovirus ORF1 molecule is a Ring2 ORF1 molecule (e.g., as described herein), or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0244] 187. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 186, wherein the anellovirus ORF1 molecule is an ORF1 molecule of SEQ ID NO: 58, or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0245] 188. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 187, wherein the anellovirus ORF1 molecule is a Ring9 ORF1 molecule (e.g., as described herein), or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0246] 189. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 188, wherein the anellovirus ORF1 molecule is an ORF1 molecule of SEQ ID NO: 1005, or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0247] 190. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 189, wherein the anellovirus ORF1 molecule is a Ring10 ORF1 molecule (e.g., as described herein), or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0248] 191. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 190, wherein the anellovirus ORF1 molecule is an ORF1 molecule of SEQ ID NO: 1012, or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0249] 192. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 191, wherein the anellovirus ORF1 molecule is a Ring18 ORF1 molecule (e.g., as described herein), or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0250] 193. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 1 to 192, wherein the anellovirus ORF1 molecule is an ORF1 molecule of SEQ ID NO: 1100, or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0251] 194. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 193, wherein the anellovirus ORF1 molecule is a Ring19 ORF1 molecule (e.g., as described herein), or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0252] 195. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1-194, wherein the anellovirus ORF1 molecule is an ORF1 molecule of Table B1-11a, or an ORF1 molecule having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0253] 196. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 195, wherein the polypeptide or anellovirus ORF1 molecule comprises an amino acid sequence as set forth in any of Tables B1-1 to B4-5, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0254] 197. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 196, wherein the polypeptide or anellovirus ORF1 molecule comprises an amino acid sequence as set forth in any of Tables B1-1 to B4-5, or an amino acid sequence having at least 90% sequence identity thereto.
[0255] 198. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 197, wherein the polypeptide or anellovirus ORF1 molecule comprises an amino acid sequence as set forth in any of Tables B1-1 to B4-5, or an amino acid sequence having at least 95% sequence identity thereto.
[0256] 199. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 198, wherein the polypeptide or anellovirus ORF1 molecule comprises an amino acid sequence as set forth in any of Tables B1-1 to B4-5, or an amino acid sequence having at least 99% sequence identity thereto.
[0257] 200. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 199, wherein the polypeptide or anellovirus ORF1 molecule comprises a Ring2, Ring9, Ring10, Ring18, or Ring19 structural arginine-rich region sequence, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0258] 201. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 200, wherein the polypeptide or anellovirus ORF1 molecule comprises a Ring2, Ring9, Ring10, Ring18, or Ring19 structural jelly-roll domain sequence, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0259] 202. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 201, wherein the polypeptide or anellovirus ORF1 molecule comprises a Ring2, Ring9, Ring10, Ring18, or Ring19 structural hypervariable domain sequence, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0260] 203. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 202, wherein the polypeptide or anellovirus ORF1 molecule comprises a structural N22 domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0261] 204. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 203, wherein the polypeptide or anellovirus ORF1 molecule comprises a structural C-terminal domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0262] 205. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 204, wherein the polypeptide or anellovirus ORF1 molecule does not contain a Ring2, Ring9, Ring10, Ring18, or Ring19 structural arginine-rich region sequence, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0263] 206. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 205, wherein the polypeptide or anellovirus ORF1 molecule does not contain a Ring2, Ring9, Ring10, Ring18, or Ring19 structural jelly-roll domain sequence, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0264] 207. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 206, wherein the polypeptide or anellovirus ORF1 molecule does not contain a Ring2, Ring9, Ring10, Ring18, or Ring19 structural hypervariable domain sequence, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0265] 208. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 207, wherein the polypeptide or anellovirus ORF1 molecule does not contain an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto, of the structural N22 domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19.
[0266] 209. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 208, wherein the polypeptide or anellovirus ORF1 molecule does not contain a structural C-terminal domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0267] 210. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 209, wherein the polypeptide or anellovirus ORF1 molecule comprises a Ring2, Ring9, Ring10, Ring18, or Ring19 structural arginine-rich region sequence, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0268] 211. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 210, wherein the polypeptide or anellovirus ORF1 molecule comprises a β-strand BH of the structural jelly-roll domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0269] 212. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 211, wherein the polypeptide or anellovirus ORF1 molecule comprises a P1-1 domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0270] 213. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 212, wherein the polypeptide or anellovirus ORF1 molecule comprises a P2 domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0271] 214. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 213, wherein the polypeptide or anellovirus ORF1 molecule comprises a P1-2 domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0272] 215. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 214, wherein the polypeptide or anellovirus ORF1 molecule comprises beta strand I of the structural jelly-roll domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0273] 216. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 215, wherein the polypeptide or anellovirus ORF1 molecule comprises a structural C-terminal domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0274] 217. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 216, wherein the polypeptide or anellovirus ORF1 molecule does not contain a Ring2, Ring9, Ring10, Ring18, or Ring19 structural arginine-rich region sequence, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0275] 218. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 217, wherein the polypeptide or anellovirus ORF1 molecule does not comprise the β-strand BH of the structural jelly-roll domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0276] 219. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 218, wherein the polypeptide or anellovirus ORF1 molecule does not contain a P1-1 domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0277] 220. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 219, wherein the polypeptide or anellovirus ORF1 molecule does not contain a P2 domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0278] 221. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 220, wherein the polypeptide or anellovirus ORF1 molecule does not contain a P1-2 domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0279] 222. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 221, wherein the polypeptide or anellovirus ORF1 molecule does not comprise beta strand I of the structural jelly-roll domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0280] 223. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 222, wherein the polypeptide or anellovirus ORF1 molecule does not contain a structural C-terminal domain sequence of Ring2, Ring9, Ring10, Ring18, or Ring19, or an amino acid sequence having at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0281] 224. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 223, wherein the polypeptide or anellovirus ORF1 molecule comprises one or more (e.g., one, two, or all three) amino acid substitutions relative to the sequence of Ring2 ORF1 protein, the substitutions being selected from K357E, N358Q, and E359I.
[0282] 225. The polypeptide, particle, nucleic acid molecule, or method according to any one of embodiments 1 to 224, wherein the polypeptide or anellovirus ORF1 molecule comprises the amino acid sequence SPTQIEQIYT (e.g., in the structural HVR domain as described herein).
[0283] 226. The polypeptide, particle, nucleic acid molecule, or method of any one of embodiments 1 to 225, wherein the polypeptide or anellovirus ORF1 molecule comprises the amino acid sequence SPTQIEQIYT (e.g., in the P2 domain as described herein).
[0284] 227.(i) a proteinaceous outer portion comprising a polypeptide comprising an anellovirus ORF1 protein as listed in Table A26, or an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto; and (ii) A genetic element encapsulated in a proteinaceous outer part, the genetic element comprising a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an exogenous effector. An anellovector comprising:
[0285] 228.(i) a proteinaceous outer portion comprising a polypeptide comprising an anellovirus ORF1 protein as listed in Table A26, or an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto; and (ii) A genetic element encapsulated in a proteinaceous outer part, the genetic element comprising a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an effector (e.g., an exogenous effector or an endogenous effector). An anaerovector comprising: An anaerovector, wherein the proteinaceous outer portion and / or genetic element comprises at least one difference (e.g., a mutation, a chemical modification, or an epigenetic change), e.g., an insertion, a substitution, a chemical or enzymatic modification, and / or a deletion, e.g., a deletion of a domain (e.g., one or more of a structural arginine-rich region, a structural jellyroll domain, a structural HVR, a structural N22, a structural CTD, a P1 domain, or a P2 domain, e.g., as described herein) or a genomic region (e.g., one or more of a TATA box, a cap site, a transcription start site, a 5'UTR, an open reading frame (ORF), a poly(A) signal, or a GC-rich region, e.g., as described herein), respectively, as compared to a wild-type anellovirus ORF1 protein and / or a wild-type anellovirus genome (e.g., as described herein).
[0286] 229.(i) A proteinaceous outer portion comprising a polypeptide encoded by an anellovirus ORF1 nucleic acid sequence as listed in Table N24, or a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity to an anellovirus ORF1 nucleic acid sequence; and (ii) A genetic element encapsulated in a proteinaceous outer part, the genetic element comprising a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an exogenous effector. An anellovector comprising:
[0287] 230.(i) A proteinaceous outer portion comprising a polypeptide encoded by an anellovirus ORF1 nucleic acid sequence as listed in Table N24, or a polypeptide encoded by a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity to an anellovirus ORF1 nucleic acid sequence; and (ii) A genetic element encapsulated in a proteinaceous outer part, the genetic element comprising a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an effector (e.g., an exogenous effector or an endogenous effector). An anaerovector comprising: An anaerovector, wherein the proteinaceous outer portion and / or genetic element comprises at least one difference (e.g., a mutation, a chemical modification, or an epigenetic change), e.g., an insertion, a substitution, a chemical or enzymatic modification, and / or a deletion, e.g., a deletion of a domain (e.g., one or more of a structural arginine-rich region, a structural jellyroll domain, a structural HVR, a structural N22, a structural CTD, a P1 domain, or a P2 domain, e.g., as described herein) or a genomic region (e.g., one or more of a TATA box, a cap site, a transcription start site, a 5'UTR, an open reading frame (ORF), a poly(A) signal, or a GC-rich region, e.g., as described herein), respectively, as compared to a wild-type anellovirus ORF1 protein and / or a wild-type anellovirus genome (e.g., as described herein).
[0288] 231. (i) a proteinaceous outer portion (e.g., comprising a polypeptide comprising an amino acid sequence, e.g., as described herein, an anellovirus ORF1 molecule, or having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto), and (ii) a genetic element encapsulated in a proteinaceous outer part, the genetic element comprising: (a) a 5'UTR conserved domain as listed in Table N24, or a nucleic acid sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto; and (b) a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an exogenous effector. An anellovector comprising:
[0289] 232. (i) a proteinaceous outer portion (e.g., comprising a polypeptide comprising an amino acid sequence, e.g., as described herein, an anellovirus ORF1 molecule, or having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto), and (ii) a genetic element encapsulated in a proteinaceous outer part, comprising: (a) a 5'UTR conserved domain as listed in Table N24, or a nucleic acid sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto; and (b) a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an effector (e.g., an exogenous effector or an endogenous effector). An anaerovector comprising: An anaerovector, wherein the proteinaceous outer portion and / or genetic element comprises at least one difference (e.g., a mutation, a chemical modification, or an epigenetic change), e.g., an insertion, a substitution, a chemical or enzymatic modification, and / or a deletion, e.g., a deletion of a domain (e.g., one or more of a structural arginine-rich region, a structural jellyroll domain, a structural HVR, a structural N22, a structural CTD, a P1 domain, or a P2 domain, e.g., as described herein) or a genomic region (e.g., one or more of a TATA box, a cap site, a transcription start site, a 5'UTR, an open reading frame (ORF), a poly(A) signal, or a GC-rich region, e.g., as described herein), respectively, as compared to a wild-type anellovirus ORF1 protein and / or a wild-type anellovirus genome (e.g., as described herein).
[0290] 233. (i) a proteinaceous outer portion (e.g., including a polypeptide comprising an amino acid sequence, e.g., an anellovirus ORF1 molecule, as described herein, or having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto), and (ii) A genetic element encapsulated in a proteinaceous outer portion, the genetic element comprising a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an exogenous effector, and having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an anellovirus genomic sequence as listed in Table N24. An anellovector comprising:
[0291] 234. (i) a proteinaceous outer portion (e.g., including a polypeptide comprising an amino acid sequence, e.g., an anellovirus ORF1 molecule, as described herein, or having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto), and (ii) A genetic element encapsulated in a proteinaceous outer portion, the genetic element comprising a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an effector (e.g., an exogenous effector or an endogenous effector), and having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an anellovirus genomic sequence as listed in Table N24. An anaerovector comprising: An anaerovector, wherein the proteinaceous outer portion and / or genetic element comprises at least one difference (e.g., a mutation, a chemical modification, or an epigenetic change), e.g., an insertion, a substitution, a chemical or enzymatic modification, and / or a deletion, e.g., a deletion of a domain (e.g., one or more of a structural arginine-rich region, a structural jellyroll domain, a structural HVR, a structural N22, or a structural CTD, e.g., as described herein) or a genomic region (e.g., one or more of a TATA box, a cap site, a transcription start site, a 5'UTR, an open reading frame (ORF), a poly(A) signal, or a GC-rich region, e.g., as described herein), respectively, compared to a wild-type anellovirus ORF1 protein and / or a wild-type anellovirus genome (e.g., as described herein).
[0292] 235. An isolated ORF1 molecule comprising an amino acid sequence of ORF1 as listed in Table A26, or an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto; An isolated ORF1 molecule, wherein the ORF1 molecule comprises at least one difference (e.g., a mutation, chemical modification, or epigenetic change) compared to a wild-type ORF1 protein (e.g., as described herein), e.g., an insertion, substitution, chemical or enzymatic modification, and / or a deletion, e.g., a deletion of a domain (e.g., one or more of the structural arginine-rich region, structural jelly-roll domain, structural HVR, structural N22, structural CTD, P1 domain, or P2 domain, e.g., as described herein).
[0293] 236. An isolated ORF1 molecule comprising an amino acid sequence of the structural jelly-roll domain of ORF1 as listed in Table A26, or an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto; An isolated ORF1 molecule, wherein the ORF1 molecule comprises at least one difference (e.g., a mutation, a chemical modification, or an epigenetic change) compared to a wild-type ORF1 protein (e.g., as described herein), e.g., an insertion, substitution, chemical or enzymatic modification, and / or a deletion, e.g., a deletion of a domain (e.g., one or more of the structural arginine-rich region, the jelly-roll domain, the structural HVR, the structural N22, the structural CTD, the P1 domain, or the P2 domain, e.g., as described herein).
[0294] 237. An isolated ORF2 molecule comprising an amino acid sequence of ORF2 as listed in Table A26, or an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto; An isolated ORF2 molecule, wherein the ORF2 molecule contains at least one difference (e.g., a mutation, chemical modification, or epigenetic change) compared to a wild-type ORF2 protein (e.g., as described herein), such as an insertion, substitution, chemical or enzymatic modification, and / or deletion, e.g., deletion of a domain.
[0295] 238. An isolated nucleic acid molecule (e.g., a genetic element construct or a genetic element) comprising a nucleic acid sequence of a 5'UTR conserved domain as listed in Table N24, or a nucleic acid sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0296] 239. An isolated nucleic acid molecule (genetic element construct or e.g., a construct for providing an ORF1 molecule in trans, e.g., as described herein) comprising a nucleic acid sequence of the ORF1 gene as listed in Table N24, or a nucleic acid sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0297] 240. An isolated nucleic acid molecule (genetic element construct or e.g., a construct for providing an ORF2 molecule in trans, e.g., as described herein) comprising a nucleic acid sequence of the ORF2 gene as listed in Table N24, or a nucleic acid sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0298] 241. An isolated nucleic acid molecule (e.g., a genetic element construct, a genetic element, or a construct for providing an ORF1 or ORF2 molecule in trans, e.g., as described herein) comprising an anellovirus genomic sequence as listed in Table N24, or a nucleic acid sequence having at least 50%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto.
[0299] 242.(a) A nucleic acid sequence having a 5'UTR conserved domain as listed in Table N24 or at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto; and (b) a promoter element operably linked to a nucleic acid sequence (e.g., a DNA sequence) encoding an exogenous effector. A genetic element comprising:
[0300] 243. A method for producing an anerovector composition, comprising: (a) providing a cell, e.g., a host cell as described herein; (b) introducing into the cell a nucleic acid molecule encoding an ORF1 polypeptide as listed in Table A26 (or an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto); (c) introducing into the cell (e.g. before, after, or simultaneously with (b)), a genetic element construct; (d) incubating the cells under conditions that permit production of the anaerovector by the cells; and (e) formulating the anellovector, e.g., as a pharmaceutical composition suitable for administration to a subject. Including, Thereby, a method for producing an anellovector composition.
[0301] 244. A method for producing an anerovector composition, comprising: (a) providing a cell, e.g., a host cell as described herein; (b) introducing into the cell a nucleic acid molecule encoding an ORF1 polypeptide; (c) introducing into the cell (e.g., before, after, or simultaneously with (b)) a genetic element construct as listed in Table N24 (or a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto); (d) incubating the cells under conditions that permit production of the anaerovector by the cells; and (e) formulating the anellovector, e.g., as a pharmaceutical composition suitable for administration to a subject. Including, Thereby, a method for producing an anellovector composition.
[0302] 245. A method for making an anaerovector, e.g., a synthetic anaerovector, comprising: (a) providing a host cell, the host cell comprising: (i) a nucleic acid molecule, e.g., a first nucleic acid molecule, comprising a nucleic acid sequence of an anellovirus genome as listed in Table N24 (or a nucleic acid sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto); and (ii) a nucleic acid molecule, e.g., a second nucleic acid molecule, encoding one or more of the amino acid sequences selected from ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, or ORF1 / 2, e.g., as listed in Table A1, or an amino acid sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto. Contains; and (b) culturing the host cells under conditions suitable for producing the anaerovector; The method includes:
[0303] 246. A method for delivering an effector to the eye of a subject, comprising administering to the eye of the subject an anellovector described in any one of embodiments 227 to 234.
[0304] 247. A method for regulating a biological function of the eye of a subject, comprising administering to the subject an anellovector described in any one of embodiments 227 to 234.
[0305] 248. A method for treating an ocular disease or eye disorder in a subject in need of such treatment, comprising administering to the subject an anellovector according to any one of embodiments 227 to 234.
[0306] 249. An ORF1 molecule comprising an exogenous surface moiety, wherein the exogenous surface moiety is fused within, replaces, and / or is located at an insertion point of an ORF1 domain (e.g., within HVR or P2).
[0307] 250. An ORF1 molecule comprising an exogenous surface moiety, wherein the exogenous surface moiety is fused to, replaces, and / or is located at an insertion point between residues corresponding to positions 284-285 in an ORF1 domain (e.g., within an HVR or P2 domain) of Ring10 ORF1.
[0308] 251. An ORF1 molecule comprising an exogenous surface moiety, wherein the exogenous surface moiety is fused to, replaces, and / or is located at an insertion point between residues corresponding to positions 328-329 in an ORF1 domain (e.g., within an HVR or P2 domain) of Ring10 ORF1.
[0309] 252. An ORF1 molecule comprising an exogenous surface moiety, wherein the exogenous surface moiety is fused to, replaces, and / or is located at an insertion point between residues corresponding to positions 256-383 in an ORF1 domain (e.g., within an HVR or P2 domain) of Ring10 ORF1.
[0310] 253. An ORF1 molecule comprising an exogenous surface moiety, wherein the exogenous surface moiety is fused to, replaces, and / or is located at an insertion point between residues corresponding to positions 251-383 in an ORF1 domain (e.g., within an HVR or P2 domain) of Ring10 ORF1.
[0311] 254. An ORF1 molecule comprising an exogenous surface moiety, wherein the exogenous surface moiety is fused to, replaces, and / or is located at an insertion point between residues corresponding to positions 251-384 in an ORF1 domain (e.g., within an HVR or P2 domain) of Ring10 ORF1.
[0312] 255. An ORF1 molecule comprising an exogenous surface moiety, wherein the exogenous surface moiety is Ring10. ORF1 molecule linked to (e.g., conjugated to) an amino acid residue (e.g., a cysteine residue) corresponding to, for example, 254, 263, 264, 265, 272, 273, 274, 276, 283, 284, 285, 287, 288, 290, 291, 308, 311, 312, 313, 314, 316, 317, 318, 319, 321, 324, 328, 329, 341, 343, 354, 358, 361, 362, 363, 364, 365, 368, 369, 371, 374, 376, 378, 380, or 381 in an ORF1 domain (e.g., within the HVR or P2 domain).
[0313] 256. The ORF1 molecule of any one of embodiments 249 to 255, wherein the exogenous surface portion forms a pentamer when the ORF1 molecule is complexed with four other ORF1 molecules (e.g., four other copies of the ORF1 molecule).
[0314] 257. The ORF1 molecule of any one of embodiments 249 to 256, wherein the exogenous surface moieties form a trimer when the ORF1 molecule is complexed with four other ORF1 molecules (e.g., four other copies of the ORF1 molecule).
[0315] 258. The ORF1 molecule of any one of embodiments 249 to 257, wherein the exogenous surface moieties form a dimer when the ORF1 molecule is complexed with four other ORF1 molecules (e.g., four other copies of the ORF1 molecule).
[0316] 259. A protein complex comprising five ORF1 molecules, each of which is (i) the ORF1 domain, and (ii) extrinsic surface moieties; Includes; A protein complex in which the exogenous surface portions of five ORF1 molecules form a pentamer.
[0317] 260. A protein complex according to embodiment 259, wherein each of the exogenous surface moieties is fused within, replaces and / or is located at an insertion point (e.g., within HVR or P2) of the ORF1 domain of the corresponding ORF1 molecule.
[0318] 261. The protein complex of embodiment 259, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 284-285 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0319] 262. The protein complex of embodiment 259, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 328-329 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0320] 263. The protein complex of embodiment 259, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 256 to 383 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0321] 264. The protein complex of embodiment 259, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 251 to 383 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0322] 265. The protein complex of embodiment 259, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 251 to 384 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0323] 266. Each of the exogenous surface portions is a Ring 10 260. The protein complex of embodiment 259, wherein the protein complex is linked to (e.g., conjugated to) an amino acid residue (e.g., a cysteine residue) corresponding to position 254, 263, 264, 265, 272, 273, 274, 276, 283, 284, 285, 287, 288, 290, 291, 308, 311, 312, 313, 314, 316, 317, 318, 319, 321, 324, 328, 329, 341, 343, 354, 358, 361, 362, 363, 364, 365, 368, 369, 371, 374, 376, 378, 380, or 381 of ORF1, e.g., in the ORF1 domain (e.g., within an HVR).
[0324] 267. A protein complex according to any one of embodiments 259 to 266, wherein the exogenous surface portions of the ORF1 molecules have the same amino acid sequence.
[0325] 268. A protein complex according to any one of embodiments 259 to 267, wherein at least two (eg, at least 2, 3, 4, or 5) of the exogenous surface portions of the ORF1 molecule have different amino acid sequences.
[0326] 269. A protein complex comprising three ORF1 molecules, each of which is (i) the ORF1 domain, and (ii) extrinsic surface moieties; Includes; A protein complex in which the exogenous surface portions of three ORF1 molecules form a trimer.
[0327] 270. A protein complex according to embodiment 269, wherein each of the exogenous surface moieties is fused within, replaces and / or is located at an insertion point (e.g., within HVR or P2) of the ORF1 domain of the corresponding ORF1 molecule.
[0328] 271. A protein complex according to embodiment 269, wherein each of the exogenous surface moieties is fused to, replaces and / or is located at an insertion point at positions 284-285 in the ORF1 domain of the corresponding ORF1 molecule (e.g., within the HVR or P2 domain).
[0329] 272. A protein complex according to embodiment 269, wherein each of the exogenous surface moieties is fused within, replaces and / or is located at an insertion point at positions 328-329 in the ORF1 domain of the corresponding ORF1 molecule (e.g., within the HVR or P2 domain).
[0330] 273. A protein complex according to embodiment 269, wherein each of the exogenous surface moieties is fused to, replaces and / or is located at an insertion point between positions 256 and 383 in the ORF1 domain of the corresponding ORF1 molecule (e.g., within the HVR or P2 domain).
[0331] 274. A protein complex according to embodiment 269, wherein each of the exogenous surface moieties is fused to, replaces and / or is located at an insertion point at positions 251 to 383 in the ORF1 domain of the corresponding ORF1 molecule (e.g., within the HVR or P2 domain).
[0332] 275. A protein complex according to embodiment 269, wherein each of the exogenous surface moieties is fused to, replaces and / or is located at an insertion point at positions 251 to 384 in the ORF1 domain of the corresponding ORF1 molecule (e.g., within the HVR or P2 domain).
[0333] 276. Each of the exogenous surface moieties is a 254, 263, 264, 265, 272, 273, 274, 276, 283, 284, 285, 287, 288, 290, 291, 308, 311, 312, 313, 314, 316, 317, 318, 319, 320, 321, 322, 323, 324, 325, 326, 327, 328, 329, 330, 331, 332, 333, 334, 335, 336, 337, 338, 339, 340, 341, 342, 343, 344, 345, 346, 347, 348, 349, 350, 351, 352, 353, 354, 355, 356, 357, 358, 359, 360, 361, 362, 363, 364, 365, 366, 367, 368, 369, 370, 371, 372, 373, 374, 375, 376, 377, 378, 379, 380, 381, 382, 383, 384, 385, 386, 387, 388, 389, 390, 391, 392, 393, 394 270. The protein complex of embodiment 269, wherein the protein complex is linked to (e.g., conjugated to) an amino acid residue (e.g., a cysteine residue) at position 19, 321, 324, 328, 329, 341, 343, 354, 358, 361, 362, 363, 364, 365, 368, 369, 371, 374, 376, 378, 380, or 381.
[0334] 277. A protein complex according to any one of embodiments 269 to 276, wherein the exogenous surface portions of the ORF1 molecules have the same amino acid sequence.
[0335] 278. A protein complex according to any one of embodiments 269 to 277, wherein at least two (eg, at least two or three) of the exogenous surface portions of the ORF1 molecule have different amino acid sequences.
[0336] 279. A protein complex comprising two ORF1 molecules, each of which is (i) the ORF1 domain, and (ii) extrinsic surface moieties; Includes; A protein complex in which the exogenous surface portions of two ORF1 molecules form a dimer.
[0337] 280. A protein complex according to embodiment 279, wherein each of the exogenous surface moieties is fused within, replaces and / or is located at an insertion point (e.g., within an HVR) of the ORF1 domain of the corresponding ORF1 molecule.
[0338] 281. The protein complex of embodiment 279, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 284-285 in the ORF1 domain of Ring10 ORF1 (e.g., within HVR or P2).
[0339] 282. The protein complex of embodiment 279, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 328-329 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0340] 283. The protein complex of embodiment 279, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 256 to 383 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0341] 284. The protein complex of embodiment 279, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 251 to 383 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0342] 285. The protein complex of embodiment 279, wherein each of the exogenous surface moieties is fused within, replaces, and / or is located at an insertion point between residues corresponding to positions 251 to 384 in the ORF1 domain of Ring10 ORF1 (e.g., within the HVR or P2 domain).
[0343] 286. Each of the exogenous surface portions is a Ring 10 280, 329, 341, 343, 354, 358, 361, 362, 363, 364, 365, 368, 369, 371, 374, 376, 378, 380, or 381 of ORF1, e.g., in the ORF1 domain (e.g., within the HVR or P2 domain).
[0344] 287. A protein complex according to any one of embodiments 279 to 286, wherein the exogenous surface portions of the two ORF1 molecules have the same amino acid sequence.
[0345] 288. A protein complex according to any one of embodiments 279 to 287, wherein the exogenous surface portions of the two ORF1 molecules have different amino acid sequences.
[0346] 289. A polypeptide, particle, nucleic acid molecule, method, or protein complex according to any one of embodiments 1 to 288, wherein the polypeptide or ORF1 molecule comprises one or more substitutions of cysteine residues (e.g., one or more cysteine to alanine substitutions or one or more cysteine to serine substitutions).
[0347] 290. The polypeptide, particle, nucleic acid molecule, method, or protein complex of any one of embodiments 1 to 289, wherein the polypeptide or ORF1 molecule comprises a cysteine to serine mutation at one or more (e.g., 1, 2, 3, 4, 5, 6, 7, or 8) residues corresponding to positions 63, 70, 137, 269, 403, 460, 503, and / or 515 of the Ring10 ORF1 protein (e.g., as described herein).
[0348] 291. The polypeptide, particle, nucleic acid molecule, method, or protein complex of any one of embodiments 1 to 290, wherein the polypeptide or ORF1 molecule comprises a cysteine to alanine mutation at one or more (e.g., 1, 2, 3, 4, 5, 6, or 7) residues corresponding to positions 63, 137, 269, 403, 460, 503, and / or 515 of the Ring10 ORF1 protein (e.g., as described herein).
[0349] 292. The polypeptide, particle, nucleic acid molecule, method, or protein complex of any one of embodiments 1 to 291, wherein the polypeptide or ORF1 molecule comprises a cysteine to serine mutation at a residue corresponding to position 70 of the Ring10 ORF1 protein (e.g., as described herein).
[0350] 293. A polypeptide, particle, nucleic acid molecule, method, or protein complex according to any one of embodiments 1 to 292, wherein the polypeptide or ORF1 molecule comprises a substitution of an amino acid residue (e.g., a threonine, serine, asparagine, alanine, glutamine, or lysine residue) with a cysteine.
[0351] 294. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises a threonine to cysteine substitution, e.g., at a position corresponding to position 365 of the Ring10 ORF1 protein (e.g., as described herein).
[0352] 295. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises a serine to cysteine substitution, e.g., at a position corresponding to position 284 of the Ring10 ORF1 protein (e.g., as described herein).
[0353] 296. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises an asparagine to cysteine substitution, e.g., at a position corresponding to position 290 of the Ring10 ORF1 protein (e.g., as described herein).
[0354] 297. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises a lysine to cysteine substitution, e.g., at a position corresponding to position 317 of the Ring10 ORF1 protein (e.g., as described herein).
[0355] 298. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises a lysine to cysteine substitution, e.g., at a position corresponding to position 324 of the Ring10 ORF1 protein (e.g., as described herein).
[0356] 299. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises an alanine to cysteine substitution, e.g., at a position corresponding to position 362 of the Ring10 ORF1 protein (e.g., as described herein).
[0357] 300. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises a serine to cysteine substitution, e.g., at a position corresponding to position 363 of the Ring10 ORF1 protein (e.g., as described herein).
[0358] 301. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises an asparagine to cysteine substitution, e.g., at a position corresponding to position 369 of the Ring10 ORF1 protein (e.g., as described herein).
[0359] 302. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises a lysine to cysteine substitution, e.g., at a position corresponding to position 371 of the Ring10 ORF1 protein (e.g., as described herein).
[0360] 303. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises a glutamine to cysteine substitution, e.g., at a position corresponding to position 287 of the Ring10 ORF1 protein (e.g., as described herein).
[0361] 304. The polypeptide, particle, nucleic acid molecule, method, or protein complex of embodiment 293, wherein the polypeptide or ORF1 molecule comprises one or more substitutions to cysteine at one or more positions corresponding to Y254, R263, N264, K265, L272, G273, T274, R276, H283, T285, N288, D291, Q308, D311, W312, T313, E314, D316, H318, N319, T321, T328, K329, T341, Q343, T354, Q358, T361, T364, Q368, D374, P376, P378, Y380, and / or I381 of the Ring10 ORF1 protein (e.g., as described herein).
[0362] 305. (a) a proteinaceous outer portion containing the ORF1 molecule; and (b) a genetic element comprising a heterologous nucleic acid sequence encoding an exogenous effector. A particle comprising: the genetic element is encapsulated within a proteinaceous outer part; and The particles have one or more of the following properties: (i) the genetic element (e.g., a DNA genetic element) does not contain an anellovirus 5' UTR or origin of replication; (ii) the sequence encoding the exogenous effector occupies at least 90%, 95%, 96%, 97%, 98%, 99% or 100% of the genetic elements (e.g., DNA genetic elements); (iii) the heterologous nucleic acid sequences account for at least 90%, 95%, 96%, 97%, 98%, 99% or 100% of the genetic elements (e.g., DNA genetic elements); (iv) the particles do not contain a detectable amount (e.g., any amount) of a polypeptide from the host cell, or contain less than 5, 10, 15, 20, 25, 30, 40, or 50 copies of a polypeptide from the host cell; (v) the particles do not contain detectable amounts (e.g., any amounts) of nucleic acid molecules from the host cell, or contain less than 2, 3, 4, or 5 copies of nucleic acid molecules from the host cell; (vi) the particles comprise a denaturing agent at a concentration of less than about 0.01M, 0.1M, 0.2M, 0.3M, 0.4M, 0.5M, 0.6M, 0.7M, 0.8M, 0.9M, 1M, 1.1M, 1.2M, 1.3M, 1.5M, 1.5M, 1.6M, 1.7M, 1.8M, 1.9M, or 2M; (vii) does not substantially replicate when introduced into a cell (e.g., a human cell); and / or (viii) Particles having a symmetrical morphology.
[0363] 306. The particle according to embodiment 305, wherein the heterologous nucleic acid sequence is about 60-100, 100-200, 200-300, 300-400, 400-500, 500-600, 600-700, 700-800, 800-900, 900-1000, 1000-1500, or 1500-2000, 2000-3000, 3000-4000, or 4000-5000 nucleotides in length.
[0364] 307. A population of particles according to embodiment 305, wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the particles in the population contain at least 50, 55, or 60 copies of anellovirus ORF1 molecules.
[0365] 308. A population of particles according to embodiment 305, wherein at least 90% of the particles in the population have a diameter of at least 30, 31, 32, 33, 34, or 35 nm.
[0366] 309. The population of particles according to embodiment 305, wherein at least 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the particles have a symmetrical morphology.
[0367] 310. A population of particles according to embodiment 305, wherein the population does not contain detectable amounts of a polypeptide from the host cell, or contains less than 1, 2, 3, 4, 5, 10, 15, 20, 25, 30, 40, or 50 copies of a polypeptide from the host cell per particle.
[0368] 311. A population of particles according to embodiment 305, wherein the population does not contain detectable amounts of nucleic acid molecules from the host cell or contains less than 1, 2, 3, 4, 5, 10, 15, 20, 25, 30, 40, or 50 copies of nucleic acid molecules from the host cell per particle.
[0369] 312. The population of particles according to embodiment 305, wherein the population comprises less than 10 ng of nucleic acid.
[0370] 313. A population of particles according to embodiment 305, wherein the population does not contain detectable amounts of nucleic acid molecules from the host cell, or contains less than 1, 2, 3, 4, 5, 10, 15, 20, 25, 30, 40, or 50 copies per particle of nucleic acid molecules from the host cell that are 200 bp or less in length.
[0371] 314. A proteinaceous outer region comprising about 40 to 80 (e.g., about 60) copies of ORF1 molecules. A particle comprising: (i) does not contain (e.g., is not encapsulated in) a polynucleotide; (ii) does not contain detectable levels of polynucleotides (e.g., is not encapsulated); (iii) does not contain (e.g., is not encapsulated in) a polynucleotide greater than 1000, 500, 200, or 100 nucleotides in length; (iv) does not contain (e.g., does not encapsulate) a polynucleotide comprising any contiguous nucleic acid sequence of at least 50, 100, 150, 200, 300, 400, 500, 600, 700, 800, 900, or 1000 nucleotides in length that has at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to a contiguous sequence in a wild-type Anellovirus genome (e.g., as described herein); and / or (v) The particle does not contain a polynucleotide comprising an anellovirus 5'UTR or replication origin.
[0372] 315. The particle according to embodiment 314, further comprising an exogenous effector.
[0373] 316. The particle according to embodiment 315, wherein the exogenous effector is encapsulated within the proteinaceous outer part.
[0374] 317. The particle according to embodiment 314 or 315, wherein the exogenous effector is a polypeptide.
[0375] 318. A particle according to any one of embodiments 314 to 317, wherein the exogenous effector is a small molecule.
[0376] 319. A composition comprising a plurality of particles comprising a proteinaceous outer portion comprising about 40-80 (e.g., about 60) copies of an ORF1 molecule; At least 50%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, 99.5%, or 99.9% of the particles are (i) a polynucleotide; (ii) a nucleic acid molecule that is more than 1000, 500, 200, or 100 nucleotides in length; (iii) a plurality of polynucleotides; (iv) a circular nucleic acid molecule, (v) a single-stranded nucleic acid molecule, and / or (vi) a genetic element (e.g., a genetic element of an anaerovector), e.g., as described herein. does not contain (e.g., is not encapsulated in); or 10 per kilogram of subject to which the composition is to be administered 10 ~10 14 Less than (e.g., 10 10 ~10 11 , 10 11 ~10 12 , 10 12 ~10 13 , or 10 13 ~10 14 A composition comprising a nucleic acid molecule (e.g., a genetic element, e.g., of an anaerovector as described herein) equivalent to a viral genome (e.g., less than 1000 ng / ml) (e.g., as determined by qPCR or by measuring optical density).
[0377] 320. The composition of embodiment 319, further comprising a denaturing agent (e.g., urea); proteasome; or ferritin, for example, at a concentration of less than about 0.01M, 0.1M, 0.2M, 0.3M, 0.4M, 0.5M, 0.6M, 0.7M, 0.8M, 0.9M, 1M, 1.1M, 1.2M, 1.3M, 1.5M, 1.5M, 1.6M, 1.7M, 1.8M, 1.9M, or 2M.
[0378] 321. The composition of embodiment 319 or 320, comprising 0.01 to 100 mg of particles (e.g., 0.01 to 1, 1 to 10, 10 to 20, 20 to 30, 30 to 40, 40 to 50, 50 to 60, 60 to 70, 70 to 80, 80 to 90, or 90 to 100 mg of particles).
[0379] 322. A method for disintegrating particles, comprising: (a) providing a mixture comprising particles and a modifier, the particles comprising: (i) a proteinaceous outer portion comprising a plurality of anellovirus ORF1 molecules; and (ii) a nucleic acid molecule (e.g., a nucleic acid endogenous to a host cell or a nucleic acid exogenous to a host cell, e.g., an anellovirus genome) Contains; and (b) subjecting the mixture to Degradation of the proteinaceous outer part, and Dissociation of nucleic acid molecules from their proteinaceous exterior Incubate under conditions suitable for The method includes:
[0380] 323. The method of embodiment 123, wherein the anellovirus ORF1 molecule is produced in a mammalian cell.
[0381] 324. The method of embodiment 322 or 323, wherein the conditions suitable for degradation of the proteinaceous outer part include one or more of the following conditions: a predetermined conductivity, a detergent (e.g., SDS (e.g., 0.1% SDS), Tween®, or Triton®), a chaotropic agent (e.g., urea), a high salt solution (e.g., a solution comprising NaCl, e.g., at a concentration of at least about 1 M, e.g., at least about 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 2, 3, 4, or 5 M), or a predetermined temperature.
[0382] 325. The method of any one of embodiments 322-324, wherein the mixture comprises a population of particles.
[0383] 326. The method of any one of embodiments 322-325, wherein the incubation in (b) results in degradation of at least 50%, 60%...95%, or 100% of the population of particles.
[0384] 327. The method of any one of embodiments 322 to 326, further comprising the step of (c) removing (partially or completely) the nucleic acid molecules from the mixture, for example by washing.
[0385] 328. The method of any one of embodiments 322 to 327, wherein the host cell is a human cell.
[0386] 329. A method for producing an anellovector, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules, wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40 to 80 (e.g., about 60) copies of ORF1 molecules; (b) subjecting the mixture to conditions suitable for the in vitro assembly of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with the plurality of genetic elements under conditions suitable for assembling the anellovirus ORF1 molecules into one or more anellovectors, each encapsulating one or more of the genetic elements. The method includes:
[0387] 330. The method of embodiment 329, wherein the mixture provided in (a) is under denaturing conditions, e.g., the mixture contains a denaturant at a level sufficient to degrade complexes (e.g., proteinaceous outer portions) comprising at least about 20, 30, 40, 50, or 60 copies, or 20-30, 30-40, 40-50, or 50-60 copies of anellovirus ORF1 molecules.
[0388] 331. The method of embodiment 329 or 330, wherein the conditions suitable for in vitro assembly comprise reducing the concentration of a denaturing agent or removing the mixture from denaturing conditions.
[0389] 332. A method for producing an anellovector, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules and subjecting the mixture to denaturing conditions (e.g., providing a denaturing agent as part of the mixture, e.g., contacting the mixture with the denaturing agent), wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40 to 80 (e.g., about 60) copies of ORF1 molecules; (b) subjecting the mixture to non-denaturing conditions suitable for in vitro assembly of anellovirus ORF1 molecules (e.g., by dialysis) (e.g., reducing the concentration of denaturing agents to a certain level); and (c) incubating the anellovirus ORF1 molecule with the plurality of genetic elements under conditions suitable for assembling the anellovirus ORF1 molecules into one or more anellovectors, each encapsulating one or more of the genetic elements. The method includes:
[0390] 333. The method of embodiment 332, wherein (b) and (c) are performed simultaneously.
[0391] 334. The method of embodiment 332, wherein (b) is performed before (c).
[0392] 335. The method of any one of embodiments 332 to 334, wherein the genetic element is introduced into the mixture containing the anellovirus ORF1 molecule prior to, simultaneously with, or after (b).
[0393] 336. The method of any one of embodiments 332-335, wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the ORF1 molecules in the mixture of (a) are contained in capsomers (e.g., decamers or particles having a diameter of 25-40 nm, e.g., a diameter of 25-30, 30-32, 32-35, or 35-40 nm or about 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 nm).
[0394] 337. The method of any one of embodiments 332 to 336, wherein the ratio of ORF1 molecules in the mixture (a) contained in the capsomers (e.g., decamers) compared to ORF1 molecules in the mixture (a) contained in the particles is at least 2:1, 3:1, 4:1, 5:1, 10:1, 50:1, 100:1, 500:1, 1000:1, 5000:1, or 10,000:1.
[0395] 338. The method of any one of embodiments 332 to 337, wherein after incubation of (c), at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are contained in an anellovector (e.g., a 60-mer or a particle having a diameter of at least 30, 31, 32, 33, 34, or 35 nm).
[0396] 339. The method of any one of embodiments 332 to 338, wherein the genetic element encodes an exogenous effector.
[0397] 340. The method according to any one of embodiments 332 to 338, wherein the genetic element is an oligonucleotide.
[0398] 341. The method according to any one of embodiments 332 to 340, wherein the genetic element does not encode a polypeptide or a functional nucleic acid.
[0399] 342. The method of any one of embodiments 332 to 341, wherein the concentration of the denaturing agent after step (b) does not exceed about 0.01M, 0.1M, 0.2M, 0.3M, 0.4M, 0.5M, 0.6M, 0.7M, 0.8M, 0.9M, 1M, 1.1M, 1.2M, 1.3M, 1.5M, 1.5M, 1.6M, 1.7M, 1.8M, 1.9M, or 2M.
[0400] 343. The method of any one of embodiments 332 to 342, wherein after incubation of (c), at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the particles in the mixture contain at least 50, 55, or 60 copies of anellovirus ORF1 molecules.
[0401] 344. The method of any one of embodiments 332-343, wherein after incubation of (c), at least 90% of the particles in the mixture have a diameter of at least 30, 31, 32, 33, 34, or 35 nm.
[0402] 345. The method of any one of embodiments 332 to 344, wherein after incubation (c), at least 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the particles in the mixture have a symmetrical morphology.
[0403] 346. The method of any one of embodiments 332-41, wherein the denaturing agent is selected from a chaotropic agent (e.g., urea), heat (e.g., a temperature greater than about 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, or 95° C.), or pH (e.g., an acidic or basic pH).
[0404] 347. A method for producing anelloVLPs, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules, wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40 to 80 (e.g., about 60) copies of ORF1 molecules; (b) subjecting the mixture to conditions suitable for the in vitro assembly of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with a plurality of effectors (e.g., exogenous effectors) under conditions suitable for assembling the anellovirus ORF1 molecule into one or more anelloVLPs, each of which encapsulates one or more of the effectors. The method includes:
[0405] 348. The method of embodiment 347, wherein the mixture provided in (a) is under denaturing conditions, e.g., the mixture contains a denaturant at a level sufficient to degrade complexes (e.g., proteinaceous outer portions) comprising at least about 20, 30, 40, 50, or 60 copies, or 20-30, 30-40, 40-50, or 50-60 copies of anellovirus ORF1 molecules.
[0406] 349. The method of embodiment 347 or 348, wherein the conditions suitable for in vitro assembly comprise reducing the concentration of a denaturing agent or removing the mixture from denaturing conditions.
[0407] 350. A method for producing an anelloVLP, comprising: (a) providing a mixture comprising a plurality of anellovirus ORF1 molecules and a denaturing agent, wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40 to 80 (e.g., about 60) copies of the ORF1 molecule; (b) reducing the concentration of the denaturing agent to a level suitable for in vitro assembly of anellovirus ORF1 molecules; and (c) incubating the anellovirus ORF1 molecule with a plurality of effectors (e.g., exogenous effectors) under conditions suitable for in vitro assembly of the anellovirus ORF1 molecule into one or more anelloVLPs, each of which encapsulates one or more of the effectors. The method includes:
[0408] 351. The method of embodiment 350, wherein an effector is introduced into the mixture containing the anellovirus ORF1 molecules prior to, simultaneously with, or after (b).
[0409] 352. The method of embodiment 350 or 351, wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the ORF1 molecules in the mixture of (a) are contained in capsomers (e.g., decamers or particles having a diameter of at most 25-40 nm, e.g., 25-30, 30-32, 32-35, or 35-40 nm or about 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 nm).
[0410] 353. The method of any one of embodiments 350 to 352, wherein the ratio of ORF1 molecules in the mixture (a) contained in the capsomers (e.g., decamers) compared to ORF1 molecules in the mixture (a) contained in the particles is at least 2:1, 3:1, 4:1, 5:1, 10:1, 50:1, 100:1, 500:1, 1000:1, 5000:1, or 10,000:1.
[0411] 354. The method of any one of embodiments 350 to 353, wherein after incubation of (c), at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are contained in anelloVLPs (e.g., 60-mers or particles having a diameter of at least 30, 31, 32, 33, 34, or 35 nm).
[0412] 355. An anello VLP has one or more of the following characteristics: (i) does not contain (e.g., is not encapsulated in) a polynucleotide; (ii) does not contain detectable levels of polynucleotides (e.g., is not encapsulated); (iii) does not contain (e.g., is not encapsulated in) a polynucleotide greater than 1000, 500, 200, or 100 nucleotides in length; (iv) does not contain (e.g., does not encapsulate) a polynucleotide comprising any contiguous nucleic acid sequence of at least 50, 100, 150, 200, 300, 400, 500, 600, 700, 800, 900, or 1000 nucleotides in length that has at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to a contiguous sequence in a wild-type Anellovirus genome (e.g., as described herein); and / or (v) does not contain a polynucleotide containing an anellovirus 5' UTR or replication origin; The method according to any one of embodiments 350 to 354.
[0413] 356. The method of any one of embodiments 350 to 355, wherein the concentration of the denaturing agent after step (b) does not exceed about 0.01M, 0.1M, 0.2M, 0.3M, 0.4M, 0.5M, 0.6M, 0.7M, 0.8M, 0.9M, 1M, 1.1M, 1.2M, 1.3M, 1.5M, 1.5M, 1.6M, 1.7M, 1.8M, 1.9M, or 2M.
[0414] 357. The method of any one of embodiments 350 to 356, wherein after incubation of (c), at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the particles in the mixture contain at least 50, 55, or 60 copies of anellovirus ORF1 molecules.
[0415] 358. The method of any one of embodiments 350 to 357, wherein after incubation of (c), at least 90% of the particles in the mixture have a diameter of at least 30, 31, 32, 33, 34, or 35 nm.
[0416] 359. The method of any one of embodiments 350 to 358, wherein after incubation of (c), at least 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the particles in the mixture have a symmetrical morphology.
[0417] 360. The method of any one of embodiments 350-359, wherein the denaturing agent is selected from a chaotropic agent (e.g., urea), heat (e.g., a temperature greater than about 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, or 95° C.), or pH (e.g., an acidic or basic pH).
[0418] 361. A method for producing an anelloVLP, comprising: (a) providing a mixture comprising particles and a modifier, the particles comprising: (i) a proteinaceous outer portion comprising a plurality of anellovirus ORF1 molecules; and (ii) a nucleic acid molecule (e.g., a host cell nucleic acid molecule) Contains; and (b) subjecting the mixture to Degradation of the proteinaceous outer part, and Dissociation of nucleic acid molecules from their proteinaceous exterior incubating under conditions suitable for (c) providing a mixture comprising a plurality of anellovirus ORF1 molecules and a denaturing agent, wherein at least 75%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% of the plurality of ORF1 molecules are not contained in particles comprising about 40 to 80 (e.g., about 60) copies of the ORF1 molecule; (d) reducing the concentration of the denaturing agent to a level suitable for in vitro assembly of anellovirus ORF1 molecules; and (e) incubating the anellovirus ORF1 molecule with a plurality of effectors (e.g., exogenous effectors) under conditions suitable for assembling the anellovirus ORF1 molecule into one or more anelloVLPs, each of which encapsulates one or more of the effectors. The method includes:
[0419] 362. (a) an arginine-rich region sequence as described herein (e.g., MPYYYRRRRYNYRRPRWYGRGWIRRPFRRRFRRKRRVR (SEQ ID NO: 216) or [ka] a first region comprising an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to a sequence of at least about 40 amino acids, at least 60%, 70%, or 80% of which are basic residues (e.g., arginine, lysine, or a combination thereof) as set forth in any one of Tables A1 to A26; (b) a jelly-roll region sequence described herein (e.g., [ka] or as set forth in any one of Tables A1-A26), or a sequence that includes at least six (e.g., at least six, seven, eight, nine, ten, eleven, or twelve) beta strands; (c) an N22 domain sequence described herein (e.g., [ka] or any one of Tables A1-A26); and (d) anellovirus ORF1 C-terminal domain (CTD) sequence described herein (e.g., [ka] or any one of Tables A1 to A26). A polypeptide, e.g., an ORF1 molecule, comprising one or more of: A polypeptide, wherein the ORF1 molecule includes at least one difference (e.g., a mutation, a chemical modification, or an epigenetic change) compared to a wild-type ORF1 protein (e.g., as described herein), such as an insertion, substitution, chemical or enzymatic modification, and / or a deletion, such as a deletion of a domain (e.g., one or more of the arginine-rich region, the jelly-roll domain, the HVR, N22, or the CTD, e.g., as described herein).
[0420] 363. The polypeptide of embodiment 362, wherein the amino acid sequences of regions (a), (b), (c), and (d) have at least 90% sequence identity with their respective references.
[0421] 364.(i) The first and second areas; (ii) the first region and the third region; (iii) the first region and the fourth region; (iv) the second and third regions; (v) the second and fourth regions; (vi) the third and fourth regions; (vii) a first region, a second region, and a third region; (viii) a first region, a second region, and a fourth region; (ix) the first region, the third region, and the fourth region; or (x) The second area, the third area, and the fourth area 363. The polypeptide of embodiment 362, comprising:
[0422] 365. The first region comprises an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to an arginine-rich region sequence as listed in any one of Tables A1 to A26; the second region comprises an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to a jellyroll region sequence as listed in any one of Tables A1-A26; the third region comprises an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to an N22 domain sequence as listed in any one of Tables A1 to A26; and / or The fourth region comprises an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity to a CTD sequence as set forth in any one of Tables A1 to A26; A polypeptide described in any one of embodiments 362 to 364.
[0423] 366. The polypeptide of embodiment 365, wherein the amino acid sequences of the first, second, third and fourth regions have at least 90% sequence identity with their respective references.
[0424] 367. The polypeptide according to any one of embodiments 1 to 366, comprising, in order from N-terminus to C-terminus, a first domain, a second domain, a third domain, and a fourth domain.
[0425] 368. The polypeptide according to any one of the preceding embodiments, wherein the at least one difference comprises at least one difference in the first region compared to the arginine-rich region of the wild-type ORF1 protein.
[0426] 369. The polypeptide of any one of embodiments 1 to 368, wherein the first region comprises an arginine-rich region from an ORF1 protein of an anellovirus other than a wild-type anellovirus with which the polypeptide, or a portion thereof excluding the first region, exhibits the highest sequence identity.
[0427] 370. The polypeptide of any one of embodiments 1 to 369, wherein the first region comprises an amino acid sequence having at least 70% sequence identity to an arginine-rich region from an anellovirus other than a wild-type anellovirus with which the polypeptide exhibits the highest sequence identity.
[0428] 371. The polypeptide of any one of embodiments 1 to 371, wherein the second region comprises a jelly-roll region from an ORF1 protein of an anellovirus other than a wild-type anellovirus with which the polypeptide, or a portion thereof excluding the second region, exhibits the highest sequence identity.
[0429] 372. The polypeptide of any one of embodiments 1 to 371, wherein the second region comprises an amino acid sequence having at least 70% sequence identity to a jellyroll region from an anellovirus other than a wild-type anellovirus with which the polypeptide exhibits the highest sequence identity.
[0430] 373. The polypeptide of any one of embodiments 1 to 372, wherein the third region comprises an N22 domain from an ORF1 protein of an anellovirus other than a wild-type anellovirus with which the polypeptide, or a portion thereof excluding the third region, exhibits the highest sequence identity.
[0431] 374. The polypeptide of any one of embodiments 1 to 373, wherein the third region comprises an amino acid sequence having at least 70% sequence identity to an N22 region from an anellovirus other than a wild-type anellovirus with which the polypeptide exhibits the highest sequence identity.
[0432] 375. The polypeptide of any one of embodiments 1 to 374, wherein the fourth region comprises a CTD domain from an ORF1 protein of an anellovirus other than a wild-type anellovirus with which the polypeptide, or a portion thereof excluding the fourth region, exhibits the highest sequence identity.
[0433] 376. The polypeptide of any one of embodiments 1 to 375, wherein the fourth region comprises an amino acid sequence having at least 70% sequence identity to a CTD region from an anellovirus other than the wild-type anellovirus with which the polypeptide exhibits the highest sequence identity.
[0434] 377. The polypeptide according to any one of embodiments 162-376, wherein the HVR sequence is located between the second and third regions.
[0435] 378. The polypeptide of embodiment 377, wherein the HVR sequence comprises an amino acid sequence having at least 70% (e.g., at least about 70, 80, 90, 95, 96, 97, 98, 99, or 100%) sequence identity with an HVR from an anellovirus other than the wild-type anellovirus with which the ORF1 protein shows the highest sequence identity.
[0436] 379. The polypeptide according to embodiment 377 or 378, wherein the HVR sequences are heterologous compared to one or more of the first region, the second region, the third region, and / or the fourth region.
[0437] 380. The polypeptide according to any one of embodiments 377 to 379, wherein the HVR sequence comprises an HVR from an ORF1 protein of an anellovirus other than a wild-type anellovirus with which the polypeptide, or a portion thereof excluding the HVR sequence, exhibits the highest sequence identity.
[0438] 381. The polypeptide according to any one of embodiments 377 to 380, wherein the HVR sequence comprises an amino acid sequence having at least 70% sequence identity with an HVR from an anellovirus other than the wild-type anellovirus with which the polypeptide exhibits the highest sequence identity.
[0439] 382. The anaerovector according to any one of the preceding embodiments, wherein the proteinaceous outer part comprises a polypeptide according to any one of the preceding embodiments 362 to 381.
[0440] 383. A particle according to any one of the preceding embodiments, wherein the proteinaceous outer part comprises a polypeptide according to any one of the preceding embodiments 362 to 381.
[0441] 384. The anelloVLP according to any one of the preceding embodiments, wherein the proteinaceous outer part comprises a polypeptide according to any one of the preceding embodiments 362 to 381.
[0442] 385. A method for making two or more different anellovirus ORF molecules, comprising: (i) providing an insect cell containing a nucleic acid construct encoding two or more different anellovirus ORF molecules (e.g., two or more of ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, and / or ORF1 / 2 molecules); (ii) incubating the insect cells under conditions suitable for expression of two or more different anellovirus ORF molecules. The method includes:
[0443] 386. The method of embodiment 385, wherein the nucleic acid construct comprises sequences encoding all of the ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, and / or ORF1 / 2 molecules.
[0444] 387. The method of embodiment 385, further comprising incubating the insect cells under conditions suitable for secretion of the anellovirus ORF molecule.
[0445] 388. The method of embodiment 385, further isolating the anellovirus ORF molecule from the insect cell.
[0446] 389. The method of embodiment 388, wherein the isolating step comprises lysing the insect cells.
[0447] 390. The method of any one of embodiments 385 to 389, wherein the anellovirus ORF comprises an anellovirus ORF1 molecule.
[0448] 391. A method for producing an anellovirus ORF1 molecule, comprising: (i) providing an insect cell comprising a nucleic acid construct encoding an anellovirus ORF1 molecule, (a) the anellovirus ORF1 molecule has a molecular weight of at least 101 kDa; (b) whether the anellovirus ORF1 molecule is a full-length anellovirus ORF1 protein; (c) a plurality of anellovirus ORF1 molecules, when in the presence of anellovirus genetic elements, encapsulates the anellovirus genetic element; (d) whether the anellovirus ORF1 molecule is the TTV ORF1 protein; (e) the anellovirus ORF1 molecule is a Betatorquevirus or a Gammatorquevirus ORF1 molecule; or (f) the anellovirus ORF1 molecule comprises an anellovirus ORF1 arginine-rich region and an anellovirus C-terminal domain; (ii) incubating the insect cells under conditions suitable for expression of the anellovirus ORF1 molecule; The method includes:
[0449] 392. The method of embodiment 391, further comprising incubating the insect cells under conditions suitable for secretion of the anellovirus ORF1 molecule.
[0450] 393. The method of embodiment 391, further isolating the anellovirus ORF1 molecule from the insect cell.
[0451] 394. The method of embodiment 391, wherein the isolating step comprises lysing the insect cells.
[0452] 395. The method of any one of embodiments 1 to 394, wherein the incubation step produces a detectable amount of anellovirus ORF1 molecules, e.g., by Western blot as described herein.
[0453] 396. A method of making an anellovirus ORF molecule (e.g., an ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, and / or ORF1 / 2 molecule), comprising: (i) providing an insect cell (e.g., an Sf9 cell) containing a nucleic acid construct encoding an anellovirus ORF molecule; (ii) incubating the insect cells under conditions suitable for expression of the plurality of anellovirus ORF molecules; and (iii) optionally isolating, purifying, and / or concentrating the plurality of anellovirus ORF molecules from the insect cells or other components or components. Includes; thereby generating an anellovirus ORF molecule.
[0454] 397. The method of embodiment 396, wherein the anellovirus ORF molecule is fused, for example, at its N-terminal end or at its C-terminal end to a marker (e.g., a His tag) (e.g., as described in Table E1 and / or Example 9).
[0455] 398. The insect cell further comprises a nucleic acid construct encoding one or more additional anellovirus ORF molecules (e.g., one or more of ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, and / or ORF1 / 2 molecules), and the method comprises: For example, prior to, simultaneously with, or subsequent to step (ii), incubating the insect cells under conditions suitable for expression of a plurality of the one or more additional anellovirus ORF molecules; and Optionally, for example, prior to, simultaneously with, or subsequent to step (iii), isolating, purifying, and / or concentrating the plurality of one or more additional anellovirus ORF molecules from the insect cells or other components or components. 398. The method of embodiment 396 or 397, further comprising:
[0456] 399. The method of embodiment 398, wherein the nucleic acid construct encoding the one or more additional anellovirus ORF molecules is the same as the nucleic acid construct of (i).
[0457] 400. The method of embodiment 399, wherein the nucleic acid construct of (i) comprises a sequence encoding two, three, four, five, or all six of the anellovirus ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, and / or ORF1 / 2 molecules.
[0458] 401. The method of embodiment 399, wherein the nucleic acid construct of (i) encodes anellovirus ORF1, ORF2, ORF2 / 2, ORF2 / 3, ORF1 / 1, and ORF1 / 2 molecules.
[0459] 402. The method of embodiment 399, wherein the nucleic acid construct of (i) comprises a complete open reading frame region of an anellovirus genome.
[0460] 403. The method of embodiment 398, wherein the nucleic acid construct encoding the one or more additional anellovirus ORF molecules is different from the nucleic acid construct of (i).
[0461] 404. The method of any one of embodiments 399 to 204, wherein the anellovirus ORF molecules are from the same anellovirus genome.
[0462] 405. The method of any one of embodiments 399 to 204, wherein the anellovirus ORF molecules are from multiple anellovirus genomes (e.g., the ORF1 molecule is from one anellovirus genome and the ORF2 molecule is from a different anellovirus genome).
[0463] 406. The method of any one of embodiments 399-405, wherein one or more of the anellovirus ORF molecules are from an alphatorque virus (e.g., as listed in Table E2).
[0464] 407. The method of any one of embodiments 399-406, wherein one or more of the anellovirus ORF molecules is from a Betatorque virus (e.g., as listed in Table E2).
[0465] 408. The method of any one of embodiments 399-407, wherein one or more of the anellovirus ORF molecules is from a Gamma Torque virus (e.g., as listed in Table E2).
[0466] 409. The method of any one of embodiments 399 to 408, wherein one or more nucleic acid constructs each comprise a promoter (e.g., a promoter that controls expression of one or more of the anellovirus ORF molecules, e.g., a baculovirus polyhedrin promoter).
[0467] 410. The method of any one of embodiments 399 to 409, further comprising incubating the insect cells under conditions suitable for secretion of the anellovirus ORF molecule.
[0468] 411. The method of any one of embodiments 398-410, wherein the isolating step comprises lysing the insect cells.
[0469] 412. The method of any one of embodiments 398-411, wherein the incubation step produces a detectable amount of anellovirus ORF molecule (e.g., ORF1 molecule), e.g., by Western blot as described herein.
[0470] 413. The method of any one of emcodiments 398-412, wherein the incubation step produces at least 1, 2, 3, 4, 5, or 6 mg of anellovirus ORF1 molecules per L of cell culture (e.g., Sf9 culture).
[0471] 414. The method of any one of embodiments 1 to 413, wherein the anellovirus ORF molecules are isolated, purified or concentrated by isopycnic centrifugation.
[0472] 415. The anellovirus ORF molecule is an anellovirus ORF1 molecule, and the method comprises: contacting an isolated, purified or concentrated anellovirus ORF1 molecule with a genetic element in vitro under conditions suitable for encapsulation of the genetic element with a proteinaceous outer part comprising an anellovirus ORF1 molecule, e.g. as described herein; The method of any one of embodiments 1 to 414, further comprising:
[0473] Other features, objects, and advantages of the invention will become apparent from the specification and drawings, and from the claims.
[0474] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. All publications, patent applications, patents, and other references mentioned herein are incorporated herein by reference in their entirety. In addition, the materials, methods, and examples are illustrative only and are not intended to be limiting.
[0475] The following detailed description of the embodiments of the invention will be better understood when read in conjunction with the accompanying drawings. For the purpose of illustrating the invention, the drawings show embodiments which are given as examples herein. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities of the embodiments shown in the drawings. The patent or application file contains at least one drawing executed in color. Copies of this patent or patent application publication in color will be provided by the Office upon request and payment of the necessary fee. [Brief description of the drawings]
[0476] [Figure 1] FIG. 1 is a series of diagrams showing the generation of exemplary malaria peptide conjugation constructs comprising the C-terminal region of the CS protein. [Diagram 2] FIG. 1 is a series of diagrams showing the structures of exemplary malaria peptide conjugation constructs on the surface of anellovector capsids. [Diagram 3]FIG. 1 shows the separation of in vitro circularized DNA into positive- and negative-sense circularized single-stranded DNA (ssDNA) after denaturation. [Figure 4A]
[0023] Figure 1 is a series of figures showing successful expression of anellovirus ORF1 molecules in cells. (A) Anellovirus strains for which ORF1 expression was detected in Sf9 cells included Ring2, Ring3, Ring4, Ring5, Ring6, Ring9, and Ring10 (e.g., as described herein). (B) Virus-like particles (VLPs) were observed by electron microscopy following production of anellovirus ORF1 protein for Ring2 and Ring10, as well as for Chicken Anemia Virus (CAV) VP1. [Figure 4B]
[0023] Figure 1 is a series of figures showing successful expression of anellovirus ORF1 molecules in cells. (A) Anellovirus strains for which ORF1 expression was detected in Sf9 cells included Ring2, Ring3, Ring4, Ring5, Ring6, Ring9, and Ring10 (e.g., as described herein). (B) Virus-like particles (VLPs) were observed by electron microscopy following production of anellovirus ORF1 protein for Ring2 and Ring10, as well as for Chicken Anemia Virus (CAV) VP1. [Figure 5A-5C] Figure 1 is a series of figures showing successful expression and purification of Ring2 ORF1 and ORF2 proteins from Sf9 cells. (A) An exemplary workflow for purification of ORF1 and ORF2 proteins from Sf9 cells. (B) Western blot using anti-ORF1 antibody showing detection of Ring2 ORF1 protein produced in Sf9 cells as indicated. (C) Electron microscopy images showing formation of virus-like particles (VLPs) from Ring2 ORF1 protein produced in Sf9 cells as indicated. [Figures 6A-6C]A series of figures showing the disassembly of Ring2 VLPs using urea as a chaotropic denaturant. (A) Ring2 ORF1 protein was produced and purified from Sf9 cells as described, and VLPs were detected by electron microscopy. (B) After treatment with urea, VLPs are no longer observed, but instead the solution contains small ORF1 capsomers. (C) Enlargement of the boxed area shown in Figure 6B, showing details of the capsomers. [Figure 7A-7B] 1 is a series of electron microscope images showing exemplary symmetric (A) and asymmetric (B) particle morphologies. [Figure 8] Illustrates expression of C-terminally His-tagged Ring2 ORF1 in insect cells. [Figure 9] Illustrates expression of C-terminally His-tagged Ring1 ORF1 and ORF1 / 1 in insect cells. [Figure 10] 1 illustrates the expression of N-terminally His-tagged Ring2 ORF1 in insect cells with or without the PreScission cleavage sequence. [Figure 11] 1 illustrates the expression of Ring1 ORF1 / 1, 1 / 2, 2, 2 / 2, and 2 / 3 as C-terminally His-tagged recombinant proteins in insect cells. [Figure 12] Figure 1 illustrates the expression of individual Ring2 ORFs in insect cells. Two exposures of the same blot are shown in the middle and right panels. The left panel shows the structure of the Ring2 constructs tested as indicated. [Figure 13] 1 illustrates baculovirus-mediated co-expression of Ring2 ORF1+"FullORF", ORF1+ORF2, ORF1+ORF2 / 2, and ORF1+ORF2 / 3 in insect cells. [Figure 14] FIG. 1 illustrates simultaneous co-expression of multiple Ring2 proteins in insect cells using baculovirus. [Figure 15] Illustrates expression of ORFs from anellovirus genomes delivered to insect cells by baculovirus and by transfection. [Figure 16]1 shows that expression of Ring1 ORF2 in Sf9 cells is independent of the polyhedrin promoter (arrow labeled pH). [Figure 17] Figure 1 illustrates the co-delivery of Ring2 ORF1-His and Ring2 genomic DNA into Sf9 cells, followed by incubation and fractionation on a linear CsCl gradient. The top of the figure shows an anti-His tag Western blot of the fractions, as well as a qPCR assay for each fraction. The bottom panel shows transmission electron microscopy images of two individual fractions and the fraction pool, as indicated by boxes on the Western blot. The inset in the middle panel is a magnified image showing the proteasome-like structures. [Figure 18] Illustrated is the characterization of Sf9 isopycnic fractions by immunogold electron microscopy. [Figure 19] 1 illustrates expression of ORF1 from additional anellovirus strains. [Figure 20] FIG. 1 is a schematic diagram showing an exemplary workflow for the generation of anaerovectors (e.g., replication-competent or replication-deficient anaerovectors as described herein). [Figure 21] Graph showing primer specificity of primer sets designed for quantification of TTV and TTMV genome equivalents. Quantitative PCR based on SYBR green chemistry shows one characteristic peak for each amplification product using TTMV or TTV specific primer sets as indicated on plasmids encoding the respective genomes. [Figure 22] Graph showing exemplary amplification plots for linear amplification of TTMV (target 1) or TTV (target 2) across seven log10 genome equivalent concentrations. Genome equivalents were quantified across seven 10-fold dilutions, resulting in high PCR efficiency and linearity (R2 TTMV: 0.996; R2 TTV: 0.997). [Figure 23A-23B]
[0023] Figure 1 is a series of figures showing that tandem anelloviral plasmids can increase anellovirus or anaerovector production. (A) Plasmid maps of exemplary tandem anelloviral plasmids. (B) Transfection of HEK293T cells with tandem anelloviral plasmids resulted in production of 4-fold higher viral genome numbers compared to plasmids harboring a single copy. [Figure 23C] 1 is a gel electrophoresis image showing circularization of TTMV-LY2 plasmids pVL46-063 and pVL46-240. [Figure 23D] Chromatograms showing copy numbers of linear and circular TTMV-LY2 constructs as determined by size exclusion chromatography (SEC). [Figure 24] FIG. 1 is a schematic showing the domains of anellovirus ORF1 molecule and the hypervariable regions that will be replaced with structural hypervariable domains from different anelloviruses. [Diagram 25] FIG. 1 is a schematic diagram showing the domains of ORF1 and the hypervariable regions that will be replaced with a protein or peptide of interest (POI) from a non-anellovirus source. [Figure 26] FIG. 1 is a series of diagrams showing the design of exemplary anaerovector genetic elements based on the anellovirus genome. Protein coding regions were deleted from the anellovirus genome (left), leaving an anellovirus non-coding region (NCR) that includes the viral promoter, the 5'UTR conserved domain (5CD), and a GC-rich region. Payload DNA was inserted into the non-coding region located at the protein-coding locus (right). The resulting anellovector harbored payload DNA (including open reading frames, genes, non-coding RNA, etc.) and essential anaerovirus cis-replication and packaging elements, but lacked the protein elements essential for replication and packaging. [Figure 27] FIG. 1 shows an alignment of 36-nucleotide GC-rich regions from nine anellovirus genome sequences and consensus sequences based thereon (SEQ ID NOs: 818 to 827, respectively, in order of appearance). [Figure 28] FIG. 1 is a series of diagrams showing the ORF1 structures from anellovirus strains LY2 and CBD203. Putative domains are labeled as indicated: arginine-rich region (arg-rich), core region including structural jelly-roll domain, hypervariable region (HVR), structural N22 region, and structural C-terminal domain (CTD). [Figure 29] FIG. 1 is a graph showing the ability of in vitro circularized (IVC) TTV-tth8 genome (IVC TTV-tth8) to generate TTV-tth8 genome copies at the expected density in HEK293T cells compared to the TTV-tth8 genome in a plasmid. [Diagram 30] 1 is a series of graphs showing the ability of in vitro circularized (IVC) LY2 genome (WT LY2 IVC) and wild-type LY2 genome in a plasmid (WT LY2 plasmid) to generate LY2 genome copies at the expected density in Jurkat cells. [Fig. 31A-31B] (FIG. 31A) Schematic representation of full-length Ring10 ORF1 (also referred to herein as Ly1) with color-coded domains with label names. The structural arginine-rich motif (ARM) is shown in purple, the structural jelly-roll (JR) domain in red, the spike P1 domain in blue, the spike P2 domain in green, and the C-terminal domain in cyan. Residue numbers starting at each domain and the structural C-terminal domain (also referred to as C-terminus) are indicated above. (FIG. 31B) Sequence of full-length Ring10 ORF1, color-coded as in FIG. 31A, with residue numbers indicated above. In bold are residues included in the Ring10 delARM construct, with the leading residue K46 indicated. Dashed lines above the sequence indicate residues not observed in density. Secondary structure elements are indicated above with β-strands as arrows and α-helices as zigzag lines. JR β-strands are conventionally labeled B through I, while additional secondary structures are numbered according to their domains. The three peptides used to generate polyclonal antibodies are underlined. [Figure 31C]Western blot analysis of Ring10 delARM after expression (Express) and after purification and storage (Purify) is shown. Molecular weight markers are indicated to the left of the gel, while arrows on the right indicate the bands of Ring10 delARM before proteolysis (Ring10 delARM) and after proteolysis (Ring10 delARM fragment). The polyclonal antibodies used to probe the Western blot are indicated below and color-coded according to the peptide used to generate them. [Figure 31D] Overlay of Ring10 delARM VLP electron density and 3D reconstruction of the 60mer VLP molecular structure color-coded as in Figure 31 A. Spike P1 and P2 domains are labeled. [Figure 31E] A single ORF1 protomer is shown in its electron density with domains labelled and coloured as in Figure 31A. [Fig. 31F] Electron density of Ring10 delARM VLP color-coded by its local resolution. Bars (left) indicate color scale of resolution (in Angstroms). Particles (right) are oriented as in Figure 31D. [Fig. 32A-32B] (FIG. 32A) Sixty Ring10 structural jelly-roll (JR) domains are depicted, one uniquely colored red. Sixty Ring10 structural jelly-roll (JR) domains form the core of the anellovirus particle. (FIG. 32B) Two JR domains are depicted (shown in red), with the observed C-terminal domain scaffold colored cyan. The JR domains are arbitrarily labeled JR1 and JR2, and for clarity, the first (K48) and last (V562) residues observed in each protomer are labeled with the corresponding numbers. [Figure 32C] A single JR domain is shown oriented to reveal the β-sheets within the particle core, with the side chains of basic residues appropriately positioned to make contact with the viral genome indicated and labeled. [Fig. 32D]The structural arginine-rich region, JR, and structural C-terminal domain of Ring10 aligned with the corresponding ORF1 sequences from various different Anellovirus genera (indicated in brackets). Ring10 residues are colored as in Figures 31A-D. Basic residues in Ring10 that are in potential contact with the viral genome are indicated with an asterisk. [Figure 33A] Illustrates the anellovirus particle structure as shown as a surface rendering. The particle is shown in grey with five spikes forming a crown structure, numbered for clarity and colour coded as in Figures 31A-31D. The spike domains extend from the core on a five-fold axis. [Figure 33B] The outer portion of the crown structure is illustrated in side view. The five spike domains are colored as in Figure 33A. Conserved hydrophobic and hydrophilic residues are colored light blue and magenta, respectively. [Figure 33C] The same spike domain from FIG. 33B is shown rotated to reveal residues within the crown structure. [Figure 33D] Illustrated is the Ring10 spike domain (color coded as in Figures 31A-31D) aligned with ORF1 sequences representing a variety of different anellovirus genera (indicated in brackets). Magenta and black asterisks indicate surface exposed residues in the P1 and P2 domains, respectively. Below the alignment are >30% consensus residues, or φ or γ, which indicate that the residue is >70% hydrophobic or >60% hydrophilic, respectively. [Fig. 34A-34B] (FIG. 34A) Schematic representation of full-length Ring10 (top), which is shown by negative staining electron microscopy to be a highly heterogeneous particle (bottom). Scale bar=100 nm. (FIG. 34B) Schematic representation of Ring10 delARM (arginine-rich motif; top), which demonstrates a structurally homologous virus-like particle (VLP) as shown by negative staining electron microscopy (bottom). Scale bar=100 nm. [Figure 34C] Schematic representation of Ring10 delARM delCTD (top), where further truncation of the structural C-terminal domain (Δ552-672) maintains structured VLPs as shown by negative staining electron microscopy (bottom). Scale bar = 100 nm. [Diagram 35] The data processing steps of the Ring10 delARM cryo-electron microscopy (cryo-EM) reconstruction are illustrated. Briefly, 58,391 particles were selected from 11,083 micrographs by crYOLO. Several 2D classification rounds resulted in 11,185 particles. After de novo reconstruction of the initial model with Relion, Relion 3D refinement was performed to obtain orientation parameters. All particles with parameters were fed into 3D classification. The most abundant particle population class resulted in a resolution of 3.98 Å. [Figure 36A] Representative negative staining micrograph of Rig 10 delARM. This micrograph was captured at NanoImaging Service. [Figure 36B] Representative cryo-EM micrograph of Ring10 delARM. The micrograph was captured at NanoImaging Service. [Fig. 37A-37B] Circular dichroism (CD) results of the TTMV-Ring10 C-terminal peptide (CSEEEEESNLFERLLRQRTKQLQLKRRIIQTLKDLQKLE) are illustrated. Figure 37A is a table showing the average secondary structure percentages predicted by different packages in CDPro. α-helices predominate in the secondary structure assignments from CD spectra. Figure 37B shows an overlay of the experimental spectrum (shown in red) of the C-terminal peptide from three different packages (SELCON3, CDSSTR, and CONTINLL) and the reference ensemble spectra calculated and averaged (shown in blue). [Figure 38]Shown is a sequence alignment of 15 known anelloviruses within various different genera indicated in brackets. Conserved amino acids are shown in the first blue line beneath the sequences. The top blue line beneath the sequence alignment indicates homologous sequences where conservation is greater than 30%. The bottom blue line indicates whether the amino acid is hydrophobic (φ, within 70% similarity) or 60% positively charged (γ, within 60% similarity), respectively. Alignment was performed with Clustal Omega as implemented in Geneious. [Fig. 39A-39D] JA20 and MN779270.1 spikes predicted by Ring10 or alpha-fold are illustrated. Figure 39A illustrates the globular representation of the Ring10 spike (same as Figure 36C). Figures 39B and 39C are the alpha-fold predicted spike representations of JA20 and MN779270.1, respectively. P1 and P2 domains are demonstrated in blue and green. Light blue and magenta are conserved hydrophobic and basic residues. Figure 39D shows the sequence alignment between Ring10, JA20, and MN779210.1. [Diagram 40] 1 is a series of graphs showing that a polyclonal antibody (i.e., AB3725) that recognizes the surface-exposed Ring10 HVR helix consisting of amino acid residues 352-361 of Ring10 ORF1 specifically binds to Ring10 anello-VLPs, whereas polyclonal antibodies raised against the HVR of different strains (designated as strain 1 and strain 2) did not bind to Ring10 ORF1. [Figure 41A] 1 shows that AB3725 recognized Ring2 ORF1 mutants that introduced point mutations K357E, N358Q, and E359I from Ring10 ORF1. [Figure 41B] 1 shows that AB3725 recognized Ring2 ORF1 mutants that introduced point mutations K357E, N358Q, and E359I from Ring10 ORF1. [Fig. 42A-42B]FIG. 42A is a series of figures showing Coomassie staining (FIG. 42A) and Western blot (FIG. 42B) for Ring2 virus-like particles (VLPs). [Diagram 43] Electron microscopy images showing Ring2 VLPs obtained after Capto400 purification. [Fig. 44A-44B] FIG. 44A is a series of figures showing Coomassie staining (FIG. 44A) and Western blot (FIG. 44B) of Ring19 VLP. [Diagram 45] Electron microscopy images showing Ring19 VLPs obtained after Capto400 purification. [Figure 46] FIG. 1 shows an exemplary workflow for conjugating NHS ester moieties to surface lysines of anelloVLPs using click chemistry. [Fig. 47A-47B] FIG. 47A is a series of figures showing Coomassie staining (FIG. 47A) and Western blot (FIG. 47B) of Ring2 VLP conjugated with NHS ester 647. [Fig. 48A-48B] FIG. 48B is a series of figures showing western blots of Ring2 anelloVLPs conjugated with NHS-ester biotin, labeled using streptavidin CV 800 antibody (FIG. 48A) or Ring19 HVR3 primary antibody and goat anti-rabbit secondary antibody (FIG. 48B). [Figure 49] FIG. 1 shows an exemplary two-step process for conjugating surface effector moieties to the surface of anelloVLPs. [Figure 50] FIG. 1 shows Coomassie staining, Western blot, and UV labeling of SARS-CoV-2 receptor binding domains (RBDs) attached to DBCO, CalFluor 488, azide, or Alexa488, as indicated. [Figure 51] FIG. 13 shows Coomassie staining and Western blot of pRTx-2652 (Ring2 ORF1 mutant) prepared using SE-FPLC. [Figure 52]FIG. 13 shows Coomassie staining and Western blot showing conjugation of RBD linked to an azide moiety with pRTx-2652 ORF1 polypeptide linked to DBCO to generate RBD-pRTx-2652 conjugate anelloVLP. [Figure 53A] This is the 60-mer icosahedral structure of Ring10delARM produced from Sf9 cells. [Figure 53B] This is a 60-mer icosahedral structure of the Ring10-ORF1del C-terminal helix produced from Expi293 cells. [Figure 53C] The ORF1 protomer from Ring10delARM is superimposed with the Ring10-ORF1del C-terminal helix structure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0477] definition The present invention will be described with respect to specific embodiments and with reference to certain figures but the invention is not limited thereto except as claimed. The terms set forth below should generally be understood in their ordinary meaning unless otherwise indicated.
[0478] When the term "comprising" is used in the present specification and claims, it does not exclude other elements. For the purposes of the present invention, the term "consisting of" is considered to be a preferred embodiment of the term "comprising". Hereinafter, when a group is defined to include at least a certain number of embodiments, this should also be understood to disclose a group that preferably consists only of these embodiments.
[0479] Where an indefinite or definite article is used to indicate a singular noun, e.g. "a", "an" or "the", this includes a plural of that noun, unless specifically stated otherwise.
[0480] The phrase "compounds, compositions, products, etc. for the purpose of treatment, regulation, etc." should be understood to refer, by itself, to compounds, compositions, products, etc. that are suitable for the stated purpose, such as treatment, regulation, etc. The phrase "compounds, compositions, products, etc. for the purpose of treatment, regulation, etc." also discloses, as an embodiment, that such compounds, compositions, products, etc. are used for treatment, regulation, etc.
[0481] The phrases "compounds, compositions, products, etc. for use in...", "use of compounds, compositions, products, etc. in the manufacture of a medicament, pharmaceutical composition, veterinary composition, diagnostic composition, etc. for...", or "compounds, compositions, products, etc. for use as a medicament..." indicate that such compounds, compositions, products, etc. are intended to be used in a method of treatment that may be performed on the human or animal body. They are considered as equivalent disclosures of embodiments and claims relating to methods of treatment, etc. If an embodiment or claim thus refers to a "compound for use in the treatment of a human or animal suspected of suffering from a disease", this is also considered to be a disclosure of "use of a compound in the manufacture of a medicament for the treatment of a human or animal suspected of suffering from a disease" or "method of treatment by administering a compound to a human or animal suspected of suffering from a disease". The phrase "compounds, compositions, products, etc. for treatment, modulation, etc." should be understood to refer to a compound, composition, product, etc. suitable for the stated purpose of treatment, modulation, etc. as such.
[0482] Hereinafter, when an example of a term, value, number, etc. is given in parentheses, this should be understood as indicating that the example described in parentheses may constitute an embodiment. For example, when it is described that "in some embodiments, the nucleic acid molecule comprises a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to the Anellovirus ORF1 encoding the nucleotide sequence of Table 1 (e.g., nucleotides 571-2613 of the nucleic acid sequence of Table 1)," some embodiments relate to a nucleic acid molecule comprising a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to the nucleotides 571-2613 of the nucleic acid sequence of Table 1.
[0483] As used herein, the term "anellovector" refers to a vehicle that includes a genetic element, e.g., an episome, e.g., circular DNA, enclosed in a proteinaceous outer part. A "synthetic anaellovector" as used herein generally refers to an anaellovector that does not occur in nature, e.g., an anaellovector that has a different sequence compared to a wild-type virus (e.g., a wild-type Anellovirus as described herein). In some embodiments, the proteinaceous outer part includes an ORF1 molecule (e.g., anellovirus ORF1 protein), e.g., as described herein. In some embodiments, the proteinaceous outer part includes a plurality of ORF1 molecules (e.g., anellovirus ORF1 proteins), e.g., at least about 40, 45, 50, 55, 60, 65, or 70 ORF1 molecules. In some embodiments, a synthetic anaellovector is engineered or recombinant, e.g., includes a genetic element that includes a difference or modification relative to a wild-type virus genome (e.g., a wild-type Anellovirus genome as described herein). In some embodiments, enclosed within the proteinaceous exterior includes 100% coverage by the proteinaceous exterior, as well as less than 100% coverage, e.g., 95%, 90%, 85%, 80%, 70%, 60%, 50% or less coverage. For example, so long as the genetic elements are retained within the proteinaceous exterior, e.g., prior to entry into the host cell, gaps or discontinuities (e.g., that render the proteinaceous exterior permeable to water, ions, peptides, or small molecules) may be present in the proteinaceous exterior. In some embodiments, the anaerovector is purified, e.g., it is separated from the original source and / or is substantially free (>50%, >60%, >70%, >80%, >90%) of other constituents.
[0484] An anaerovector, in some embodiments, comprises a nucleic acid vector that comprises a nucleic acid sequence derived from or highly similar to (e.g., at least 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% identical to) an Anellovirus genomic sequence, or a contiguous portion thereof, sufficient to permit packaging into a proteinaceous outer portion (e.g., capsid), and further comprises a heterologous sequence. In some embodiments, an anaerovector is a viral vector or a naked nucleic acid. In some embodiments, the anaerovector comprises at least about 50, 60, 70, 71, 72, 73, 74, 75, 80, 90, 100, 150, 200, 300, 400, 500, 600, 700, 800, 900, 1000, 1100, 1200, 1300, 1400, 1500, 1600, 1700, 1800, 1900, 2000, 2500, 3000, or 3500 contiguous nucleotides of a native Anellovirus sequence or a sequence highly similar thereto (e.g., at least 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% identical). In some embodiments, the anaerovector further comprises one or more of Anellovirus ORF1, ORF2, or ORF3. In some embodiments, the heterologous sequence comprises a multiple cloning site, comprises a heterologous promoter, comprises a coding region for a therapeutic protein, or encodes a therapeutic nucleic acid. In some embodiments, the capsid is a wild-type Anellovirus capsid. In embodiments, the anaerovector comprises genetic elements as described herein, e.g., a genetic element comprising a promoter, a sequence encoding a therapeutic effector, and a capsid binding sequence.
[0485] As used herein, the term "anelloVLP" refers to a vehicle (e.g., a virus-like particle) that comprises a proteinaceous outer portion and an effector (e.g., an exogenous effector). In some examples, an anaeroVLP does not comprise a substantial amount of nucleic acid. In some embodiments, the proteinaceous outer portion comprises an ORF1 molecule (e.g., anellovirus ORF1 protein), e.g., as described herein. In some embodiments, the proteinaceous outer portion comprises a plurality of ORF1 molecules (e.g., anellovirus ORF1 protein), e.g., at least about 40, 45, 50, 55, 60, 65, or 70 ORF1 molecules. In some embodiments, the effector is encapsulated in the proteinaceous outer portion. In some embodiments, the effector is on the surface of the proteinaceous outer portion (e.g., included in a surface portion as described herein). In some embodiments, the anaeroVLP does not comprise a polynucleotide greater than 50, 100, 150, 200, 300, 400, 500, 600, 700, 800, 900, 1000, 1100, 1200, 1300, 1400, 1500, 1600, 1700, 1800, 1900, or 2000 nucleotides in length. In some embodiments, the anaeroVLP does not comprise a polynucleotide comprising an anaerovirus 5'UTR or an anaerovirus origin of replication. In some embodiments, anelloVLPs do not include a polynucleotide comprising any contiguous nucleic acid sequence of at least 50, 100, 150, 200, 300, 400, 500, 600, 700, 800, 900, or 1000 nucleotides in length that has at least 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to a contiguous sequence in a wild-type Anellovirus genome (e.g., as described herein).
[0486] As used herein, the term "antibody molecule" refers to a protein, e.g., an immunoglobulin chain or fragment thereof, that comprises at least one immunoglobulin variable domain sequence. The term "antibody molecule" encompasses full-length antibodies and antibody fragments (e.g., scFv). In some embodiments, an antibody molecule is a multispecific antibody molecule, e.g., an antibody molecule comprises a plurality of immunoglobulin variable domain sequences, where a first immunoglobulin variable domain sequence of the plurality has binding specificity for a first epitope and a second immunoglobulin variable domain sequence of the plurality has binding specificity for a second epitope. In some embodiments, a multispecific antibody molecule is a bispecific antibody molecule. A bispecific antibody molecule is generally characterized by a first immunoglobulin variable domain sequence that has binding specificity for a first epitope and a second immunoglobulin variable domain sequence that has binding specificity for a second epitope.
[0487] The term "deletion," as used herein in reference to an amino acid sequence or a nucleic acid sequence, refers to a portion of a sequence that is not present relative to a reference sequence. In some embodiments, the deletion is actively removed from the sequence (e.g., by cleavage and / or enzymatically). In some embodiments, the sequence is made de novo without the deletion (e.g., a nucleic acid molecule that is synthesized de novo without the deleted sequence, a nucleic acid molecule that is made using a template sequence from which the deleted sequence has already been removed, or a polypeptide that is translated from a nucleic acid sequence that does not encode the deleted sequence).
[0488] The term "disassembly", as used herein in relation to a particle, such as a virus-like particle (VLP), or a proteinaceous outer portion, refers to the dissociation of one or more components of the particle (e.g., capsid proteins, e.g., ORF1 molecules as described herein) from the remainder of the particle. In some examples, disassembly of a particle (e.g., a VLP) includes ORF1 molecules moving far enough apart that they no longer form a proteinaceous outer portion. In some examples, ORF1 molecules that are separated by the disassembly of the particle form capsomers (e.g., decameric capsomers), e.g., as described herein. In some embodiments, disassembly reduces the particle to individual monomers. In some embodiments, multimers, e.g., decamers, monomers, and / or pentamers, remain after disassembly. In some examples, disassembly includes denaturation of protein complexes of the particle (e.g., breaking of non-covalent bonds between ORF1 molecules in the proteinaceous outer portion). In some examples, disassembly is driven by a denaturing agent, as described herein.
[0489] The term "in vitro assembly," as used herein in reference to an anaerovector or anaeroVLP, refers to the formation of a proteinaceous outer part comprising an ORF1 molecule, where the formation does not occur inside a cell (e.g., occurs in a cell-free system such as a cell-free suspension, lysate, or supernatant). In some examples, in vitro assembly of an anaerovector involves the encapsulation of a genetic element (e.g., as described herein) within the proteinaceous outer part outside a cell. In some examples, in vitro assembly of an anaeroVLP involves the association of an effector (e.g., an exogenous effector, e.g., as described herein) with the proteinaceous outer part (e.g., encapsulated within the proteinaceous outer part) outside a cell. In vitro assembly of the proteinaceous exterior portion may in some instances be performed under conditions suitable for multimerization of multiple ORF1 molecules (e.g., non-denaturing conditions), e.g., multimers of more than 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 ORF1 molecules are formed. In some instances, the in vitro assembly results in the formation of a proteinaceous exterior portion comprising at least about 20, 30, 40, 50, or 60 ORF1 molecules, or about 20-30, 30-40, 40-50, 50-60, or 60-70 ORF1 molecules). In some instances, the proteinaceous exterior portion is formed from ORF1 molecules produced in and subsequently purified from cells. In some instances, the in vitro assembly is performed in a solution that does not contain cells or components thereof. In other instances, the in vitro assembly is performed in a solution that includes cell debris (e.g., from lysed cells). In some examples, in vitro assembly is performed in a solution that is substantially free of cellular nucleic acid molecules (e.g., genomic DNA, mitochondrial DNA, mRNA, and / or non-coding RNA from cells). As used herein, "encoding" nucleic acid refers to a nucleic acid sequence that encodes an amino acid sequence or a functional polynucleotide (e.g., a non-coding RNA, such as an siRNA or miRNA).
[0490] As used herein, an "exogenous" agent (e.g., effector, nucleic acid (e.g., RNA), gene, payload, protein) refers to an agent not contained in or encoded by a corresponding wild-type virus, e.g., an Anellovirus described herein. In some embodiments, an exogenous agent is not naturally occurring, such as a protein or nucleic acid that has a sequence that is altered (e.g., by insertion, deletion, or substitution) relative to a naturally occurring protein or nucleic acid. In some embodiments, an exogenous agent is not naturally occurring in a host cell. In some embodiments, an exogenous agent is naturally occurring in a host cell but is exogenous to the virus. In some embodiments, an exogenous agent is naturally occurring in a host cell but not at a desired level or at a desired time.
[0491] A "heterologous" substance or element (e.g., effector, nucleic acid sequence, amino acid sequence), as used herein with respect to another substance or element (e.g., effector, nucleic acid sequence, amino acid sequence), refers to a substance or element that is not naturally present together in, for example, a wild-type virus, e.g., anellovirus. In some embodiments, a heterologous nucleic acid sequence can be present in the same nucleic acid as a naturally occurring nucleic acid sequence (e.g., a sequence that is naturally present in an anellovirus). In some embodiments, a heterologous substance or element is exogenous to the anellovirus that is the substrate for other (remaining) elements of the anellovector.
[0492] As used herein, the term "genetic element" refers to a nucleic acid sequence, generally a nucleic acid sequence in an anaerovector. It is understood that a genetic element can be made as naked DNA and optionally further assembled into a proteinaceous exterior. It is also understood that an anaerovector can insert its genetic element into a cell, and thus a genetic element can be present in a cell and a proteinaceous exterior without necessarily entering the cell.
[0493] As used herein, the term "ORF1 molecule" refers to a polypeptide having an activity and / or structural characteristics of an anellovirus ORF1 protein (e.g., an anellovirus ORF1 protein as described herein, e.g., as listed in any one of Tables A1-A26), or a functional fragment thereof. An ORF1 molecule, in some cases, comprises one or more (e.g., 1, 2, 3, or 4) of the following: a first region comprising at least 60% basic residues (e.g., at least 60% arginine residues), a second region comprising at least about six beta strands (e.g., at least 4, 5, 6, 7, 8, 9, 10, 11, or 12 beta strands), a third region comprising the structure or activity of an anellovirus structural N22 domain (e.g., as described herein, e.g., a structural N22 domain from an anellovirus ORF1 protein described herein), and / or a fourth region comprising the structure or activity of an anellovirus structural C-terminal domain (CTD) (e.g., as described herein, e.g., a CTD from an anellovirus ORF1 protein described herein). In some cases, an ORF1 molecule comprises, in order from the N-terminus to the C-terminus, the first, second, third, and fourth regions. In some cases, the anaerovector comprises an ORF1 molecule comprising, in order from N-terminus to C-terminus, a first, second, third, and fourth region. The ORF1 molecule may, in some cases, comprise a polypeptide encoded by an anellovirus ORF1 nucleic acid (e.g., as listed in any one of Tables N1-N26). The ORF1 molecule may, in some cases, further comprise a heterologous sequence, e.g., a hypervariable region (HVR), e.g., an HVR from an anellovirus ORF1 protein, e.g., as described herein. "Anellovirus ORF1 protein," as used herein, refers to an ORF1 protein encoded by an anellovirus genome (e.g., a wild-type anellovirus genome, e.g., as described herein), e.g., an ORF1 protein having an amino acid sequence as listed in any one of Tables A1-A26, or as encoded by an ORF1 gene as listed in any one of Tables N1-N26.
[0494] The term "ORF1 domain" as used herein in reference to an ORF1 molecule refers to a portion of an ORF1 molecule having the structure or function of an anellovirus ORF1 protein. The ORF1 domain generally has the ability to form multimers with other copies of the ORF1 domain (e.g., in other ORF1 molecules) or with other ORF1 molecules, e.g., to form a proteinaceous outer portion (e.g., of an anellovector or anelloVLP as described herein). In some examples, an ORF1 molecule may include one or more additional domains other than the ORF1 domain (e.g., a domain that includes or is associated with a surface effector, e.g., as described herein). In some examples, the amino acid sequence of the ORF1 domain includes an insertion (e.g., an insertion that encodes a surface moiety or a domain that has the ability to bind to a surface moiety), for example, between the N-terminal and C-terminal ends of the ORF1 domain. In certain instances, the insertion does not substantially disrupt the structure and / or function of the ORF1 domain, such that, for example, the ORF1 domain remains capable of forming multimers with other ORF1 domains or ORF1 molecules. The location in the ORF1 domain sequence where the insertion is made is referred to herein as the "insertion point." The insertion can be made into the ORF1 domain by any gene or polypeptide engineering method known in the art. In some embodiments, the ORF1 molecule consists of the ORF1 domain. In other embodiments, the ORF1 molecule comprises an ORF1 domain and a heterologous domain (e.g., a surface portion as described herein). In some embodiments, the ORF1 domain is connected to the surface portion by a polypeptide linker region.
[0495] As used herein, the term "ORF2 molecule" refers to a polypeptide having activity and / or structural characteristics of an anellovirus ORF2 protein (e.g., as described herein, e.g., an anellovirus ORF2 protein as listed in any one of Tables A1-A26), or a functional fragment thereof. "Anellovirus ORF2 protein" as used herein refers to an ORF2 protein encoded by an anellovirus genome (e.g., a wild-type anellovirus genome, e.g., as described herein), e.g., an ORF2 protein having an amino acid sequence as listed in any one of Tables A1-A26, or as encoded by the ORF2 gene as listed in any one of Tables N1-N26.
[0496] As used herein, the term "particle" refers to a medium that includes a proteinaceous exterior that is less than 100 nm in diameter (e.g., about 20-25, 25-30, 30-35, or 35-40 nm). In some examples, the particle includes multiple ORF1 molecules. The proteinaceous exterior of the particle generally forms an inclusion that is capable of restricting or preventing the movement of certain molecules between the inside and outside of the proteinaceous exterior. In some embodiments, the proteinaceous exterior may have gaps or discontinuities (e.g., that render the proteinaceous exterior permeable to water, ions, peptides, or small molecules). In certain embodiments, the gaps or discontinuities are of a size (e.g., diameter) that is small enough that the proteinaceous exterior restricts or prevents the passage of one or more large macromolecules (e.g., peptides, polypeptides, polynucleotides, lipids, or polysaccharides) through the proteinaceous exterior.
[0497] As used herein, the term "proteinaceous exterior" refers to exterior components that are predominantly (e.g., >50%, >60%, >70%, >80%, >90%) protein.
[0498] As used herein, the term "regulatory nucleic acid" refers to a nucleic acid sequence that modulates the expression, e.g., transcription and / or translation, of a DNA sequence encoding an expression product. In embodiments, the expression product comprises an RNA or a protein.
[0499] As used herein, the term "regulatory sequence" refers to a nucleic acid sequence that modulates the transcription of a target gene product. In some embodiments, a regulatory sequence is a promoter or enhancer.
[0500] As used herein, the term "replication protein" refers to a protein, e.g., a viral protein, that is utilized during infection, viral genome replication / expression, viral protein synthesis, and / or assembly of viral components.
[0501] When viewed by electron microscopy, anaerovector or anaeroVLP particles typically adopt one of two conformations: a symmetrical morphology (e.g., as illustrated in FIG. 7A) and an asymmetrical or less symmetrical morphology (e.g., as illustrated in FIG. 7B). Thus, the term "symmetrical morphology," as used herein in connection with anaerovector or anaeroVLP particle morphology, refers to a particle having a predominantly symmetrical shape. A particle having a symmetrical morphology may, in some instances, be approximately circular. A particle having a symmetrical morphology may, in some instances, not be perfectly circular or spherical (e.g., may be ovoid). In some instances, a particle having a symmetrical morphology may include one or more deviations from a circular or spherical shape (e.g., one or more protrusions or recesses from its surface).
[0502] As used herein, the term "structural arginine-rich region" refers to a domain of anellovirus ORF1 molecule having a structural arginine-rich region sequence as listed in any of Tables B1-1 to B1-12, or a corresponding sequence in another ORF1 molecule.
[0503] As used herein, the term "structural jellyroll region" refers to a domain of anellovirus ORF1 molecule having a structural jellyroll region sequence as listed in any of Tables B1-1 to B1-12, or a corresponding sequence in another ORF1 molecule.
[0504] As used herein, the term "structural N22 domain" refers to a domain of anellovirus ORF1 molecule having a structural N22 domain sequence as listed in any of Tables B1-1 to B1-12, or a corresponding sequence in another ORF1 molecule.
[0505] As used herein, the term "structural C-terminal domain region" refers to a domain of anellovirus ORF1 molecule having a structural C-terminal domain sequence as listed in any of Tables B1-1 to B1-12, or a corresponding sequence in another ORF1 molecule.
[0506] As used herein, the term "jellyroll BH strand subdomain" refers to a domain of anellovirus ORF1 molecule having a jellyroll BH strand subdomain sequence as listed in any of Tables B1-1 to B1-12, or a corresponding sequence in another ORF1 molecule.
[0507] As used herein, the term "P1 domain" generally refers to the discontinuous domain that includes, for example, the P1-1 and P1-2 subdomains of anellovirus ORF1 molecules.
[0508] As used herein, the term "P1-1 subdomain" refers to a domain of anellovirus ORF1 molecule having a P1-1 domain sequence as listed in any of Tables B1-1 to B1-12, or a corresponding sequence in another ORF1 molecule.
[0509] As used herein, the term "P2 domain" refers to a domain of anellovirus ORF1 molecule having a P2 domain sequence as listed in any of Tables B1-1 to B1-12, or a corresponding sequence in another ORF1 molecule.
[0510] As used herein, the term "P1-2 subdomain" refers to a domain of anellovirus ORF1 molecule having a P1-2 subdomain sequence as listed in any of Tables B1-1 through B1-12, or a corresponding sequence in another ORF1 molecule.
[0511] As used herein, the term "jellyroll I strand subdomain" refers to a domain of anellovirus ORF1 molecule having a jellyroll I strand subdomain sequence as listed in any of Tables B1-1 through B1-12, or a corresponding sequence in another ORF1 molecule.
[0512] As used herein, the term "mutant ORF1" when applied to a particular domain or region of an ORF1 molecule refers to a non-naturally occurring ORF1 domain or region that contains at least one sequence difference (e.g., addition, deletion, or substitution) compared to the most closely related naturally occurring ORF1 domain or region sequence. For example, a "mutant ORF1 structural jellyroll region" contains at least one sequence difference (e.g., addition, deletion, or substitution) compared to the most closely related naturally occurring anellovirus ORF1 structural jellyroll region.
[0513] As used herein, a "substantially non-pathogenic" organism, particle, or construct refers to an organism, particle (e.g., a virus or anellovector, as described herein, for example), or construct thereof, that does not induce or induce a detectable disease or pathology in a host organism, e.g., a mammal, e.g., a human. In some embodiments, administration of an anelovector to a subject may result in some reactions or side effects that are acceptable as part of standard treatment.
[0514] As used herein, "non-pathogenic" refers to an organism or component thereof that does not induce or induce detectable disease or pathology in a host organism, e.g., a mammal, e.g., a human.
[0515] As used herein, a "substantially non-integrated" genetic element refers to a genetic element within a virus or anellovector (e.g., those described herein) where less than about 0.01%, 0.05%, 0.1%, 0.5%, or 1% of the genetic elements that enter a host cell (e.g., a eukaryotic cell) or organism (e.g., a mammal, e.g., a human) are integrated into the genome. In some embodiments, the genetic element is not detectably integrated, for example, into the genome of the host cell. In some embodiments, integration of the genetic element into the genome can be detected using techniques described herein, e.g., nucleic acid sequencing, PCR detection, and / or nucleic acid hybridization.
[0516] As used herein, a "substantially non-immunogenic" organism, particle, or component refers to, for example, an organism, particle (e.g., a virus or anellovector, e.g., as described herein), or component thereof, that does not provoke or elicit an undesirable or off-target immune response in a host tissue or organism (e.g., a mammal, e.g., a human). In some embodiments, a substantially non-immunogenic organism, particle, or component does not elicit a detectable immune response. In some embodiments, a substantially non-immunogenic anaellovector does not elicit a detectable immune response against a protein comprising an amino acid sequence or encoded by a nucleic acid sequence set forth in any one of Tables N1-N26. In some embodiments, an immune response (e.g., an unwanted or non-targeted immune response) is determined by assaying the presence or level of a subject's antibodies (e.g., the presence or level of anti-anellovector antibodies, e.g., the presence or level of antibodies to an anaellovector described herein), for example, according to the anti-TTV antibody detection methods described in Tsuda et al. (1999; J. Virol. Methods 77:199-206; incorporated herein by reference) and / or the method of measuring anti-TTV IgG levels described in Kakkola et al. (2008; Virology 382:182-189; incorporated herein by reference). Antibodies to anelloviruses or anaellovectors based thereon can also be detected by methods in the art for detecting anti-viral antibodies, for example, the methods for detecting anti-AAV antibodies described in Calcedo et al. (2013; Front. Immunol. 4(341):1-7; incorporated herein by reference).
[0517] As used herein, a "subsequence" refers to a nucleic acid sequence or amino acid sequence contained within a larger nucleic acid sequence or amino acid sequence, respectively. In some cases, a subsequence may comprise a domain or functional fragment of the larger sequence. In some cases, a subsequence may comprise a fragment of the larger sequence that, when isolated from the larger sequence, can form a secondary and / or tertiary structure similar to the secondary and / or tertiary structure formed by the subsequence when present with the remainder of the larger sequence. In some cases, a subsequence can be replaced with another sequence (e.g., a subsequence that comprises a foreign or heterologous sequence relative to the remainder of the larger sequence, e.g., a corresponding subsequence from a different Anellovirus).
[0518] As used herein, the term "surface portion" refers to a portion that is at least partially exposed on the outer surface of the particle (e.g., exposed to the solution surrounding the particle). The surface portion is generally directly or indirectly associated with a component of the proteinaceous outer portion of the particle (e.g., an ORF1 molecule). In some cases, the surface portion is covalently associated with a component of the proteinaceous outer portion of the particle (e.g., an ORF1 molecule). In some cases, the surface portion is non-covalently associated with a component of the proteinaceous outer portion of the particle (e.g., an ORF1 molecule). In some cases, the surface portion is bound to a binding portion, which in turn is bound (e.g., covalently or non-covalently) to a component of the proteinaceous outer portion of the particle (e.g., an ORF1 molecule). In some cases, the surface portion is included in the ORF1 molecule (e.g., is a heterologous domain of the ORF1 molecule). In some examples, the surface moiety is exogenous to the anellovirus (e.g., the anellovirus from which the ORF1 molecule is derived and / or the anellovirus whose ORF1 protein has at least 50%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to the ORF1 molecule). In some examples, the surface moiety is exogenous to a target cell (e.g., a mammalian cell, e.g., a human cell) that is to be infected with the particle.
[0519] As used herein, "treatment," "treating," and cognates refer to the medical management of a subject with the intent to ameliorate, improve, stabilize, prevent, or cure a disease, pathological condition, or disorder. This term includes active treatment (treatment directed at ameliorating the disease, pathological condition, or disorder), causal treatment (treatment directed at the cause of the associated disease, pathological condition, or disorder), palliative treatment (treatment designed to relieve symptoms), preventative treatment (treatment directed at preventing, minimizing, or partially or completely preventing the occurrence of the associated disease, pathological condition, or disorder); and supportive treatment (treatment used to complement another treatment).
[0520] As used herein, the term "virome" refers to a virus in a particular environment, e.g., in a part of the body, e.g., in an organism, e.g., in a cell, e.g., in a tissue.
[0521] The present invention generally relates to anaerovectors, e.g., synthetic anaerovectors, and uses thereof. The present disclosure provides anaerovectors, compositions comprising anaerovectors, and methods of making or using anaerovectors. An anaerovectors are generally useful as delivery vehicles, e.g., for delivering therapeutic agents to eukaryotic cells. In general, an anaerovector may contain a genetic element that includes a nucleic acid sequence (e.g., encoding an effector, e.g., an exogenous effector or an endogenous effector) encapsulated in a proteinaceous envelope. An anaerovector may include one or more deletions of sequences (e.g., regions or domains described herein) compared to an anaerovirus sequence (e.g., as described herein). An anaerovector can be used as a substantially non-immunogenic vehicle for delivering a genetic element, or an effector encoded therein (e.g., a polypeptide or nucleic acid effector, e.g., as described herein), to a eukaryotic cell, e.g., for the purpose of treating a disease or disorder in a subject, including the cell.
[0522] table of contents I. Anellovectors and AnelloVLPs A. Anellovirus B.ORF1 molecule i. Structural arginine-rich region deletions and truncations ii. Structural C-terminal domain deletions and truncations iii. Chimeric ORF1 molecule (a) N-terminal insertion (e.g., structural arginine-rich region swap) (b) P1 / P2 domain swap (c) Other domain swaps C.ORF2 molecule D. genetic elements E. Protein Binding Sequences F.5'UTR region G.GC rich region H. Effector I. Proteinaceous outer part J. Surface part i. Click chemistry (a) Exemplary Click Chemistry (b) Mutation of surface lysines (c) Mutation of surface cysteines ii. Gene grafting iii.X-fold rotational symmetry II. Compositions and Methods for the Generation of Anaerovectors and AnaeroVLPs A. Components and Assembly of Anellovectors and AnelloVLPs i. ORF1 molecule for assembly of anaerovectors and anaeroVLPs ii. ORF2 molecules for the assembly of anaerovectors and anaeroVLPs iii. Preparation of protein components (a) Baculovirus expression system (b) Insect cell system (c) Mammalian cell line B. Genetic Element Constructs i. Plasmid ii. Circular Nucleic Acid Constructs iii. In vitro cyclization iv. Tandem constructs v. Cis / Trans Constructs vi. Expression cassette vii. Design and construction of genetic element constructs C. Effector D. host cell i. Introduction of genetic elements into a host cell ii. Methods in which one or more proteins are provided in cis or trans iii. Exemplary Cell Types E.Culture conditions F. Recovery G. In Vitro Assembly Methods for Anellovectors In vitro assembly of H. anelloviral VLPs I. Concentration and Purification III. Vector IV. Composition V. Host cells VI.How to use VII. Preparation method VIII. Administration / Delivery
[0523] I. Anellovectors and AnelloVLPs In some aspects, the invention described herein includes compositions and methods for the use and production of anaerovectors, anaerovector preparations, anaeroVLPs, anaeroVLP preparations, and therapeutic compositions.
[0524] Anello Vector In some embodiments, the anaellovector has a sequence, structure, and / or function based on an Anellovirus (e.g., an Anellovirus as described herein, e.g., an Anellovirus comprising a nucleic acid or polypeptide comprising a sequence as set forth in any one of Tables A1-A26 or N1-N26), or a fragment or portion thereof, or another substantially non-pathogenic virus, e.g., a mutualistic virus, commensal virus, naturally occurring virus. In some embodiments, an Anellovirus-based anaellovector comprises at least one element exogenous to the Anellovirus, e.g., an exogenous effector or a nucleic acid sequence encoding an exogenous effector that is located within a genetic element of the anaellovector. In some embodiments, an Anellovirus-based anaerovector comprises at least one element heterologous to another element derived from the Anellovirus, e.g., an effector-encoding nucleic acid sequence, e.g., a promoter element, that is heterologous to another linked nucleic acid sequence. In some embodiments, an anaerovector comprises a genetic element (e.g., a circular DNA, e.g., a single-stranded DNA) that comprises at least one element heterologous to the remainder of the genetic element and / or a proteinaceous exterior (e.g., an exogenous element encoding an effector, e.g., as described herein). An anaerovector may be a delivery vehicle (e.g., a substantially non-pathogenic delivery vehicle) of a payload to a host, e.g., a human. In some embodiments, an anaerovector is capable of replicating in a eukaryotic cell, e.g., a mammalian cell, e.g., a human cell. In some embodiments, an anaerovector is substantially non-pathogenic and / or substantially non-integrative in mammalian (e.g., human) cells. In some embodiments, the anaerovector is substantially non-immunogenic in a mammal, e.g., a human. In some embodiments, the anaerovector is replication-deficient. In some embodiments, the anaerovector is replication-competent.
[0525] In some embodiments, the anaerovector comprises a clone, or a component thereof (e.g., a genetic element including, e.g., sequences encoding effectors and / or proteinaceous exterior) as described in PCT Application No. PCT / US2018 / 037379, which is incorporated by reference in its entirety.
[0526] In one aspect, the invention includes: (i) a genetic element comprising a promoter element, a sequence encoding an effector (e.g., an endogenous effector or an exogenous effector, e.g., a payload), and a protein binding sequence (e.g., an exogenous protein binding sequence, e.g., a packaging signal), wherein the genetic element is single stranded DNA and further has one or both of the following properties: it is circular and / or it integrates into the genome of a eukaryotic cell at a frequency of less than about 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 1.5%, or 2% of the genetic elements that enter the cell; and (ii) an anaerovector comprising a proteinaceous exterior, wherein the genetic element is enclosed within the proteinaceous exterior; and the anaerovector is capable of delivering the genetic element into a eukaryotic cell.
[0527] In some embodiments of the anaerovectors described herein, the genetic elements are integrated at a frequency of less than about 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 1.5%, or 2% of the genetic elements that enter a cell. In some embodiments, less than about 0.01%, 0.05%, 0.1%, 0.5%, 1%, 2%, 3%, 4%, or 5% of the genetic elements from a plurality of anaerovectors administered to a subject are integrated into the genome of one or more host cells of the subject. In some embodiments, for example, as described herein, the genetic elements of a population of anaerovectors are integrated into the genome of a host cell at a frequency lower than that of a comparable population of AAV viruses, e.g., about 50%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 100% or more lower than that of a comparable population of AAV viruses.
[0528] In one aspect, the invention provides a genetic element comprising: (i) a promoter element, a sequence encoding an effector (e.g., an endogenous effector or an exogenous effector, e.g., a payload), and a protein binding sequence (e.g., an exogenous protein binding sequence), wherein the genetic element is a wild-type Anellovirus sequence (e.g., wild-type Torque Teno virus (TTV), Torque Teno minivirus (TTV), or a wild-type Torque Teno minivirus (TTV)). a genetic element having at least 75% (e.g., at least 75, 76, 77, 78, 79, 80, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100%) sequence identity to a wild-type Anellovirus (TTMV) or TTMDV sequence, e.g., a wild-type Anellovirus sequence as listed in any one of Tables N1-N26; and (ii) an anaellovector comprising a proteinaceous exterior, where the genetic element is enclosed within the proteinaceous exterior; and the anaellovector is capable of delivering the genetic element into a eukaryotic cell.
[0529] In one aspect, the present invention provides a method for producing a method for treating a cancer cell comprising the steps of: a) a genetic element comprising: (i) a sequence encoding a non-pathogenic foreign protein; (ii) an foreign protein binding sequence that binds the genetic element to the non-pathogenic foreign protein; and (iii) a sequence encoding an effector (e.g., an endogenous or exogenous effector); and b) a proteinaceous exterior that is associated with, e.g., encases or confines, the genetic element; The anellovector comprises:
[0530] In some embodiments, the anellovector comprises sequences or expression products derived from (or with >70%, 75%, 80%, 85%, 90%, 95%, 97%, 98%, 99%, 100% homology to) non-enveloped, circular, single-stranded DNA viruses. Animal circular single-stranded DNA viruses generally refer to a subgroup of single-stranded DNA (ssDNA) viruses that infect eukaryotic non-plant hosts and have a circular genome. Thus, animal circular ssDNA viruses are distinguishable from ssDNA viruses that infect prokaryotes (i.e., Microviridae and Inoviridae) and ssDNA viruses that infect plants (i.e., Geminiviridae and Nanoviridae). They are also distinguishable from linear ssDNA viruses that infect non-plant eukaryotic cells (i.e., Parvoviridae).
[0531] In some embodiments, the anellovector modulates a host cell function, e.g., transiently or long term. In some embodiments, the cell function is stably altered, e.g., modulation lasts for at least about 1 hour to about 30 days, or at least about 2 hours, 6 hours, 12 hours, 18 hours, 24 hours, 2 days, 3 days, 4 days, 5 days, 6 days, 7 days, 8 days, 9 days, 10 days, 11 days, 12 days, 13 days, 14 days, 15 days, 16 days, 17 days, 18 days, 19 days, 20 days, 21 days, 22 days, 23 days, 24 days, 25 days, 26 days, 27 days, 28 days, 29 days, 30 days, 60 days, or more, or any time in between. In some embodiments, the function of the cell is transiently altered, for example, modulation lasts for about 30 minutes to about 7 days or less, or for about 1 hour, 2 hours, 3 hours, 4 hours, 5 hours, 6 hours, 7 hours, 8 hours, 9 hours, 10 hours, 11 hours, 12 hours, 13 hours, 14 hours, 15 hours, 16 hours, 17 hours, 18 hours, 19 hours, 20 hours, 21 hours, 22 hours, 24 hours, 36 hours, 48 hours, 60 hours, 72 hours, 4 days, 5 days, 6 days, 7 days or less, or any time in between.
[0532] In some embodiments, the genetic element comprises a promoter element. In some embodiments, the promoter element is selected from an RNA polymerase II-dependent promoter, an RNA polymerase III-dependent promoter, a PGK promoter, a CMV promoter, an EF-1α promoter, an SV40 promoter, a CAGG promoter, or a UBC promoter, a TTV viral promoter, a tissue-specific, U6 (pollIII), minimal CMV promoter with an upstream DNA binding site for an activator protein (such as TetR-VP16, Gal4-VP16, dCas9-VP16, etc.). In some embodiments, the promoter element comprises a TATA box. In some embodiments, the promoter element is endogenous to, for example, a wild-type Anellovirus described herein.
[0533] In some embodiments, the genetic element comprises one or more of the following characteristics: single stranded, circular, negative stranded, and / or DNA. In some embodiments, the genetic element comprises an episome. In some embodiments, the portion of the genetic element excluding the effector has a total size of about 2.5-5 kb (e.g. about 2.8-4 kb, about 2.8-3.2 kb, about 3.6-3.9 kb, or about 2.8-2.9 kb), less than about 5 kb (e.g. less than about 2.9 kb, 3.2 kb, 3.6 kb, 3.9 kb, or 4 kb), or at least 100 nucleotides (e.g. at least 1 kb).
[0534] The anaerovectors, compositions comprising anaerovectors, methods of using such anaerovectors, etc. described herein are based in part on examples that describe how, in some cases, different effectors, e.g., miRNAs (e.g., against IFN or miR-625), shRNAs, etc., can be combined with protein binding sequences, e.g., DNA sequences that bind to capsid proteins, such as Q99153, to produce anaerovectors (which can then be used to deliver the effectors to cells (e.g., animal cells, e.g., human cells or non-human cells, such as porcine or mouse cells). In embodiments, the effectors can suppress expression of factors such as interferons. The examples also describe how anaerovectors can be produced, e.g., by inserting effectors into sequences derived from an Anellovirus. Based on these examples, the following description considers various variations of the specific findings and combinations discussed in the examples. For example, one skilled in the art will understand from the examples that the specific miRNA is used as just one example of an effector, and that other effectors may be, for example, other regulatory nucleic acids or therapeutic peptides. Similarly, the specific capsid used in this example may be replaced by a substantially non-pathogenic protein as described later in this specification. Also, the specific Anellovirus sequence described in this example may be replaced by an Anellovirus sequence as described later in this specification. These considerations apply equally to protein binding sequences, regulatory sequences such as promoters, and the like. Independently of them, one skilled in the art will particularly consider such embodiments as are closely related to this example.
[0535] In some embodiments, the anaerovector, or a genetic element contained therein, is introduced into a cell (e.g., a human cell). In some embodiments, for example, once the anaerovector or genetic element is introduced into a cell, an effector (e.g., an RNA, e.g., miRNA) encoded by the genetic element of the anaerovector is expressed in the cell (e.g., a human cell). In some embodiments, introduction of the anaerovector, or a genetic element contained therein, into a cell modulates (e.g., increases or decreases) the level of a target molecule (e.g., a target nucleic acid, e.g., an RNA, or a target polypeptide) in the cell, for example, by modifying the level of expression of the target molecule by the cell. In some embodiments, introduction of the anaerovector, or a genetic element contained therein, into a cell modulates (e.g., increases or decreases) the function of the cell. In some embodiments, introduction of the anaerovector, or a genetic element contained therein, into a cell modulates (e.g., increases or decreases) the viability of the cell. In some embodiments, introduction of the anellovector, or the genetic elements contained therein, into a cell reduces the viability of the cell (e.g., a cancer cell).
[0536] In some embodiments, the anaerovectors described herein (e.g., synthetic anaerovectors) induce an antibody positivity rate of less than 70% (e.g., an antibody positivity rate of less than about 60%, 50%, 40%, 30%, 20%, or 10%). In some embodiments, the antibody positivity rate is measured according to methods known in the art. In some embodiments, the antibody positivity rate is measured by detecting antibodies against an Anellovirus (e.g., as described herein) or an Anellovector based thereon in a biological sample, for example, according to the anti-TTV antibody detection method described in Tsuda et al. (1999; J. Virol. Methods 77:199-206; incorporated herein by reference) and / or the method for determining anti-TTV IgG seropositivity described in Kakkola et al. (2008; Virology 382:182-189; incorporated herein by reference). Additionally, antibodies to anellovirus or anellovectors based thereon can also be detected by methods known in the art for detecting anti-viral antibodies, such as the methods for detecting anti-AAV antibodies described in Calcedo et al. (2013; Front. Immunol. 4(341):1-7; incorporated herein by reference).
[0537] In some embodiments, a replication-deficient, replication-impaired, or replication-deficient genetic element does not encode all of the machinery or components required for replication of the genetic element. In some embodiments, a replication-deficient genetic element does not encode a replication factor. In some embodiments, a replication-deficient genetic element does not encode one or more ORFs (e.g., ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, and / or ORF2t / 3, e.g., as described herein). In some embodiments, the machinery or components not encoded by the genetic element are provided in trans (e.g., encoded in a helper, e.g., a helper virus or helper plasmid, or in a nucleic acid contained in the host cell, e.g., integrated into the genome of the host cell), e.g., such that the genetic element can undergo replication in the presence of the machinery or components provided in trans.
[0538] In some embodiments, the packaging-deficient, packaging-defective, or packageable genetic element cannot be packaged into the proteinaceous exoskeleton (e.g., where the proteinaceous exoskeleton comprises a capsid or a portion thereof that comprises, e.g., a polypeptide encoded by an ORF1 nucleic acid described herein). In some embodiments, the packaging-deficient genetic element is packaged into the proteinaceous exoskeleton with less than 10% (e.g., less than 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.1%, 0.01%, or 0.001%) efficiency compared to a wild-type Anellovirus (e.g., as described herein). In some embodiments, the packaging-defective genetic element cannot be packaged into a proteinaceous exosomal region even in the presence of factors (e.g., ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, or ORF2t / 3) that allow packaging of the genetic element of a wild-type Anellovirus (e.g., as described herein). In some embodiments, the packaging-defective genetic element is packaged into the proteinaceous exosporium with an efficiency of less than 10% (e.g., less than 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.1%, 0.01%, or 0.001%) compared to a wild-type Anellovirus (e.g., as described herein), even in the presence of factors (e.g., ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, or ORF2t / 3) that enable packaging of the genetic element of a wild-type Anellovirus (e.g., as described herein).
[0539] In some embodiments, the packagable genetic element may be packaged into a proteinaceous exterior (e.g., where the proteinaceous exterior comprises a capsid or a portion thereof that includes, e.g., a polypeptide encoded by an ORF1 nucleic acid described herein). In some embodiments, the packagable genetic element is packaged into a proteinaceous exterior with an efficiency of at least 20% (e.g., at least 20%, 30%, 40%, 50%, 60%, 70%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, 100%, or more) compared to a wild-type Anellovirus (e.g., as described herein). In some embodiments, the packagable genetic elements may be packaged into a proteinaceous exterior in the presence of factors (e.g., ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, or ORF2t / 3) that allow packaging of the genetic elements of a wild-type Anellovirus (e.g., as described herein). In some embodiments, the packagable genetic element is packaged into the proteinaceous exosomal with an efficiency of at least 20% (e.g., at least 20%, 30%, 40%, 50%, 60%, 70%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, 100% or more) compared to a wild-type Anellovirus (e.g., as described herein) in the presence of factors (e.g., ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, or ORF2t / 3) that enable packaging of the genetic element of a wild-type Anellovirus (e.g., as described herein).
[0540] Anello VLP In some embodiments, the AnelloVLP has a sequence, structure, and / or function based on an Anellovirus (e.g., an Anellovirus as described herein, e.g., an Anellovirus comprising a nucleic acid or polypeptide comprising a sequence as set forth in any one of Tables A1-A26), or a fragment or portion thereof, or another substantially non-pathogenic virus, e.g., a mutualistic virus, a commensal virus, a naturally occurring virus. In some embodiments, an Anellovirus-based AnelloVLP comprises at least one element exogenous to the Anellovirus, e.g., an exogenous effector or a nucleic acid sequence encoding an exogenous effector. In some embodiments, an AnelloVLP comprises a surface portion that comprises an exogenous effector. In some embodiments, the Anellovirus-based AnelloVLP comprises at least one element heterologous to another element from the Anellovirus, e.g., an effector-encoding nucleic acid sequence heterologous to another linked nucleic acid sequence, such as a promoter element. The AnelloVLP may be a delivery vehicle (e.g., a substantially non-pathogenic delivery vehicle) of a payload to a host, e.g., a human. In some embodiments, the AnelloVLP is incapable of replicating in a eukaryotic cell, e.g., a mammalian cell, e.g., a human cell. In some embodiments, the AnelloVLP is substantially non-pathogenic in mammalian (e.g., human) cells and / or substantially non-integrating. In some embodiments, the AnelloVLP is substantially non-immunogenic in a mammal, e.g., a human.
[0541] In some aspects, the invention includes an anaeroVLP comprising a proteinaceous outer portion and an effector (e.g., an exogenous effector); wherein the anaeroVLP is capable of delivering the exogenous effector to a eukaryotic cell. In some embodiments, the exogenous effector is encapsulated within the proteinaceous outer portion. In some embodiments, the exogenous effector is included in a surface portion that is on the surface of the anaeroVLP (e.g., as described herein). In some embodiments, the proteinaceous outer portion comprises one or more ORF1 molecules (e.g., an anaerovirus ORF1 protein, e.g., as described herein, or a polypeptide having at least 50%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity thereto).
[0542] In some embodiments, anelloVLPs comprise sequences or expression products from (or with greater than 70%, 75%, 80%, 85%, 90%, 95%, 97%, 98%, 99%, 100% homology to) non-enveloped circular single-stranded DNA viruses. Animal circular single-stranded DNA viruses generally refer to a group of single-stranded DNA (ssDNA) viruses with circular genomes that infect eukaryotic hosts other than plants. Thus, animal circular ssDNA viruses are distinguishable from ssDNA viruses that infect prokaryotes (i.e., Microviridae and Inoviridae) and ssDNA viruses that infect plants (i.e., Geminiviridae and Nanoviridae). They are also distinguishable from linear ssDNA viruses that infect eukaryotes other than plants (i.e., Parvoviridiae).
[0543] In some embodiments, the anelloVLPs modulate a host cell function, e.g., transiently or long term. In certain embodiments, the cell function is stably altered, such as modulation lasting for at least about 1 hour to about 30 days, or at least about 2 hours, 6 hours, 12 hours, 18 hours, 24 hours, 2 days, 3 days, 4 days, 5 days, 6 days, 7 days, 8 days, 9 days, 10 days, 11 days, 12 days, 13 days, 14 days, 15 days, 16 days, 17 days, 18 days, 19 days, 20 days, 21 days, 22 days, 23 days, 24 days, 25 days, 26 days, 27 days, 28 days, 29 days, 30 days, 60 days, or more, or any time in between. In certain embodiments, the cellular function is altered transiently, e.g., by modulation that does not persist for more than about 30 minutes to about 7 days, or does not persist for more than about 1 hour, 2 hours, 3 hours, 4 hours, 5 hours, 6 hours, 7 hours, 8 hours, 9 hours, 10 hours, 11 hours, 12 hours, 13 hours, 14 hours, 15 hours, 16 hours, 17 hours, 18 hours, 19 hours, 20 hours, 21 hours, 22 hours, 24 hours, 36 hours, 48 hours, 60 hours, 72 hours, 4 days, 5 days, 6 days, 7 days, or any time in between.
[0544] The anaeroVLPs, compositions comprising anaeroVLPs, methods of using such anaeroVLPs, etc. as described herein are in part based on examples illustrating how different effectors, such as miRNAs (e.g., anti-IFN or miR-625), shRNAs, etc., and protein binding sequences, such as DNA sequences that bind capsid proteins, such as Q99153, can be combined with proteinaceous outer parts, such as capsids disclosed in Arch Virol (2007) 152:1961-1975, to create anaeroVLPs that can then be used to deliver effectors to cells (e.g., animal cells, such as human cells or non-human animal cells, such as porcine or mouse cells). In embodiments, the effectors can silence expression of factors such as interferons. These examples further describe how anaeroVLPs can be created, for example, by insertion of effectors into sequences derived from the Anellovirus genus. It is on the basis of these examples that the following description contemplates various variations of the specific findings and combinations discussed in these examples. For example, the skilled artisan will understand from these examples that the specific miRNA is used only as an example of an effector, and that other effectors may be, for example, other regulatory nucleic acids or therapeutic peptides. Similarly, the specific capsids used in these examples may be replaced with the substantially non-pathogenic proteins described below. The specific Anellovirus sequences described in these examples may also be replaced with the Anellovirus sequences described below. These considerations apply similarly to protein binding sequences, regulatory sequences such as promoters, etc. Apart from that, the skilled artisan will consider in detail such embodiments closely related to these examples.
[0545] In some embodiments, the anelloVLP is introduced into a cell (e.g., a human cell). In some embodiments, an exogenous effector is delivered to a cell. In some embodiments, delivery of an exogenous effector to a cell modulates (e.g., increases or decreases) the level of a target molecule (e.g., a target nucleic acid, e.g., RNA, or a target polypeptide) in the cell, e.g., by changing the expression level of the target molecule by the cell. In some embodiments, delivery of an exogenous effector to a cell modulates (e.g., increases or decreases) a function of the cell. In some embodiments, delivery of an exogenous effector to a cell modulates (e.g., increases or decreases) the viability of the cell. In some embodiments, delivery of an exogenous effector to a cell decreases the viability of the cell (e.g., a cancer cell).
[0546] In some embodiments, the anelloVLPs described herein (e.g., synthetic anelloVLPs) induce an antibody prevalence of less than 70% (e.g., an antibody prevalence of less than about 60%, 50%, 40%, 30%, 20%, or 10%). In some embodiments, the antibody prevalence is determined according to methods known in the art. In some embodiments, the antibody prevalence is determined by detecting antibodies against an Anellovirus (e.g., as described herein) or an anelloVLP based thereon in a biological sample, for example, according to the anti-TTV antibody detection method described in Tsuda et al. (1999; J. Virol. Methods 77:199-206; incorporated herein by reference) and / or the anti-TTV IgG seroprevalence determination method described in Kakkola et al. (2008; Virology 382:182-189; incorporated herein by reference). Antibodies against Anellovirus or AnelloVLPs based thereon can also be detected by methods in the art for detecting anti-viral antibodies, for example, methods for detecting anti-AAV antibodies as described, for example, in Calcedo et al. (2013; Front. Immunol. 4(341):1-7; incorporated herein by reference).
[0547] Anellovirus In some embodiments, an anaerovector or an anaeroVLP, for example as described herein, comprises a sequence or expression product derived from an Anellovirus. In some embodiments, an anaerovector or an anaeroVLP comprises one or more sequences or expression products exogenous to an Anellovirus. In some embodiments, an anaerovector or an anaeroVLP comprises one or more sequences or expression products endogenous to an Anellovirus. In some embodiments, an anaerovector or an anaeroVLP comprises one or more sequences or expression products that are heterologous to one or more other sequences or expression products in the anaerovector. Anelloviruses generally have single-stranded circular DNA genomes with negative polarity. Anelloviruses have not been associated with human disease. However, attempts to link Anellovirus infection to human disease have been hampered by the high incidence of asymptomatic Anellovirus viremia in control cohort populations, the remarkable genomic diversity of the Anellovirus virus family, the inability to previously grow the virus in vitro, and the lack of animal models of Anellovirus disease (Yzebe et al., Panminerva Med. (2002) 44:167-177; Biagini, P., Vet. Microbiol. (2004) 98:95-101).
[0548] Anelloviruses are generally thought to be transmitted by oronasal or fecal-oral, maternal-fetal and / or uterine infections (Gerner et al., Ped. Infect. Dis. J. (2000) 19:1074-1077). Infected individuals may have a prolonged (months to years) course of Anellovirus viremia. Humans may be co-infected with two or more genogroups or lineages (Saback, et al., Scad. J. Infect. Dis. (2001) 33:121-125). It has been suggested that these genogroups may recombine in infected humans (Rey et al., Infect. (2003) 31:226-233). Double-stranded isoform (replicative) intermediates have been found in several tissues, including liver, peripheral blood mononuclear cells, and bone marrow (Kikuchi et al., J. Med. Virol. (2000) 61:165-170; Okamoto et al., Biochem. Biophys. Res. Commun. (2002) 270:657-662; Rodriguez-Ilnigo et al., Am. J. Pathol. (2000) 156:1227-1234).
[0549] In some embodiments, an anaerovector or anaeroVLP as described herein comprises one or more polypeptides (e.g., ORF1 molecules) comprising an amino acid sequence having at least about 50%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus sequence, e.g., as described herein, or a fragment thereof. In embodiments, the polypeptide comprises an amino acid sequence encoded by a nucleic acid sequence selected from a sequence as set forth in any one of Tables N1-N26, or a sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto. In embodiments, the polypeptide comprises a sequence as set forth in any one of Tables A1-A26, or a sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0550] In some embodiments the genetic element comprises a nucleic acid sequence encoding an amino acid sequence or a functional fragment thereof, or a sequence having at least 60%, 70%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to any one of the amino acid sequences described herein, for example an Anellovirus amino acid sequence.
[0551] In some embodiments, the anaerovectors described herein comprise one or more nucleic acid molecules (e.g., genetic elements described herein) that comprise a sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to, for example, an Anellovirus sequence described herein, or a fragment thereof. In embodiments, the anaerovector comprises a nucleic acid sequence selected from a sequence as set forth in any one of Tables N1-N26, or a sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto. In embodiments, the anaerovector comprises a polypeptide comprising a sequence as set forth in any one of Tables A1-A26, or a sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0552] In some embodiments, the anellovectors described herein comprise one or more nucleic acid molecules (e.g., genetic elements described herein) that comprise a sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to one or more TATA boxes, initiation elements, cap sites, transcription start sites, 5'UTR conserved domains, ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, ORF2t / 3, 3 open reading frame regions, poly(A) signals, GC-rich regions, or any combination thereof, of any of the anelloviruses described herein (e.g., an anellovirus sequence annotated in or encoded by a sequence listed in any one of Tables N1-N26). In some embodiments, the nucleic acid molecule comprises a sequence encoding a capsid protein, e.g., an ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, ORF2t / 3 sequence of any of the Anelloviruses described herein (e.g., an Anellovirus sequence annotated in or encoded by a sequence listed in any one of Tables N1-N26). In some embodiments, the nucleic acid molecule comprises a sequence encoding a capsid protein comprising an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF1 or ORF2 protein (e.g., an ORF1 or ORF2 amino acid sequence set forth in any one of Tables N1-N26, or an ORF1 or ORF2 amino acid sequence encoded by a nucleic acid sequence set forth in any one of Tables N1-N26).In some embodiments, the nucleic acid molecule comprises a sequence encoding a capsid protein comprising an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF1 protein (e.g., an ORF1 amino acid sequence set forth in any one of Tables N1-N26, or an ORF1 amino acid sequence encoded by a nucleic acid sequence set forth in any one of Tables N1-N26).
[0553] Nucleic acid sequence In some embodiments, the nucleic acid molecule comprises a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF1 nucleotide sequence of any one of Tables N1 through N26. In some embodiments, the nucleic acid molecule comprises a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF2 nucleotide sequence of any one of Tables N1 through N26. In some embodiments, the nucleic acid molecule comprises a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF3 nucleotide sequence of any one of Tables N1 through N26. In some embodiments, the nucleic acid molecule comprises a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus GC-rich region nucleotide sequence of any one of Tables N1 through N26. In some embodiments, the nucleic acid molecule comprises a nucleic acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus 5'UTR conserved domain nucleotide sequence of any one of Tables N1 through N26.
[0554] Amino acid sequences encoded by nucleic acid sequences In embodiments, the nucleic acid molecule comprises a nucleic acid sequence encoding an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF1 amino acid sequence of any one of Tables A1-A26. In embodiments, the nucleic acid molecule comprises a nucleic acid sequence encoding an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF2 amino acid sequence of any one of Tables A1-A26. In embodiments, the nucleic acid molecule comprises a nucleic acid sequence encoding an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF3 amino acid sequence of any one of Tables A1 through A26.
[0555] Proteins containing amino acid sequences In embodiments, the anaerovectors described herein comprise a protein having an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF1 amino acid sequence in any one of Tables A1-A26. In embodiments, the anaerovectors described herein comprise a protein having an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF2 amino acid sequence in any one of Tables A1-A26. In embodiments, an anaerovector described herein comprises a protein having an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF3 amino acid sequence of any one of Tables A1-A26. In some embodiments, an ORF1 molecule (e.g., contained in an anaerovector) comprises an anellovirus ORF1 protein of any one of Tables A1-A26, or a splice variant or post-translationally processed (e.g., proteolytically processed) variant thereof. In some embodiments, an ORF2 molecule (e.g., contained in an anaerovector) comprises an anellovirus ORF2 protein of any one of Tables A1-A26, or a splice variant or post-translationally processed (e.g., proteolytically processed) variant thereof. In some embodiments, the ORF3 molecule (e.g., contained in an anellovector) comprises an anellovirus ORF3 protein of any one of Tables A1-A26, or a splice variant or post-translationally processed (e.g., proteolytically processed) variant thereof.
[0556] Polypeptides containing amino acid sequences In some embodiments, the polypeptides described herein comprise an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF1 amino acid sequence described herein. In embodiments, the polypeptides described herein comprise an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF1 amino acid sequence of any one of Tables A1-A26.
[0557] In some embodiments, the polypeptides described herein comprise an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an ORF1 molecule encoded by an Anellovirus ORF1 nucleic acid described herein. In some embodiments, the polypeptides described herein comprise an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an ORF1 molecule encoded by an Anellovirus ORF1 nucleic acid as listed in any one of Tables A1-A26.
[0558] In some embodiments, a polypeptide described herein comprises an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF2 amino acid sequence described herein. In embodiments, a polypeptide described herein comprises an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF2 amino acid sequence of any one of Tables A1-A26.
[0559] In some embodiments, the polypeptides described herein comprise an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an ORF2 molecule encoded by an Anellovirus ORF2 nucleic acid described herein. In some embodiments, the polypeptides described herein comprise an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an ORF2 molecule encoded by an Anellovirus ORF2 nucleic acid as listed in any one of Tables A1-A26.
[0560] In some embodiments, a polypeptide described herein comprises an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF3 amino acid sequence described herein. In embodiments, a polypeptide described herein comprises an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an Anellovirus ORF3 amino acid sequence of any one of Tables A1-A26.
[0561] In some embodiments, the polypeptides described herein comprise an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an ORF3 molecule encoded by an Anellovirus ORF3 nucleic acid described herein. In some embodiments, the polypeptides described herein comprise an amino acid sequence having at least about 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to an ORF3 molecule encoded by an Anellovirus ORF3 nucleic acid as listed in any one of Tables A1-A26.
[0562] In some embodiments, the polypeptide comprises an amino acid sequence as set forth in any one of Tables A1-A26 (e.g., an ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, or ORF2t / 3 sequence), or a sequence having at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity thereto.
[0563] [Table N1-1]
[0564] [Table N1-2]
[0565] [Table N1-3]
[0566] [Table A1-1]
[0567] [Table A1-2]
[0568]
Table A1-3
[0569]
Table N2-1
[0570]
Table N2-2
[0571]
Table N2-3
[0572]
Table A2-1
[0573]
Table A2-2
[0574]
Table N3-1
[0575]
Table N3-2
[0576]
Table N3-3
[0577]
Table A3-1
[0578]
Table A3-2
[0579]
Table A3-3
[0580]
Table N4-1
[0581]
Table N4-2
[0582]
Table N4-3
[0583]
Table A4-1
[0584]
Table A4-2
[0585]
Table A4-3
[0586]
Table N5-1
[0587]
Table N5-2
[0588]
Table N5-3
[0589]
Table A5-1
[0590]
Table A5-2
[0591]
Table N6-1
[0592]
Table N6-2
[0593]
Table N6-3
[0594]
Table N6-4
[0595]
Table A6-1
[0596]
Table A6-2
[0597]
Table N7-1
[0598]
Table N7-2
[0599]
Table N7-3
[0600]
Table N7-4
[0601]
Table A7-1
[0602]
Table A7-2
[0603]
Table N8-1
[0604]
Table N8-2
[0605]
Table N8-3
[0606]
Table N8-4
[0607]
Table A8-1
[0608]
Table A8-2
[0609]
Table N9-1
[0610]
Table N9-2
[0611]
Table N9-3
[0612]
Table N9-4
[0613]
Table A9-1
[0614]
Table A9-2
[0615]
Table N10-1
[0616]
Table N10-2
[0617]
Table N10-3
[0618]
Table N10-4
[0619]
Table A10-1
[0620]
Table A10-2
[0621]
Table N11-1
[0622]
Table N11-2
[0623]
Table N11-3
[0624]
Table A11-1
[0625]
Table A11-2
[0626]
Table A11-3
[0627]
Table N12-1
[0628]
Table N12-2
[0629]
Table N12-3
[0630]
Table N12-4
[0631]
Table A12-1
[0632]
Table A12-2
[0633]
Table N13-1
[0634]
Table N13-2
[0635]
Table N13-3
[0636]
Table N13-4
[0637]
Table A13-1
[0638]
Table A13-2
[0639]
Table N14-1
[0640]
Table N14-2
[0641]
Table N14-3
[0642]
Table A14
[0643]
Table N15-1
[0644]
Table N15-2
[0645]
Table N15-3
[0646]
Table A15-1
[0647]
Table A15-2
[0648]
Table N16-1
[0649]
Table N16-2
[0650]
Table N16-3
[0651]
Table A16-1
[0652]
Table A16-2
[0653]
Table N17-1
[0654]
Table N17-2
[0655]
Table N17-3
[0656]
Table A17-1
[0657]
Table A17-2
[0658]
Table A17-3
[0659]
Table N18-1
[0660]
Table N18-2
[0661]
Table N18-3
[0662]
Table A18-1
[0663]
Table A18-2
[0664]
Table N19-1
[0665]
Table N19-2
[0666]
Table N19-3
[0667]
Table A19-1
[0668]
Table A19-2
[0669]
Table N20-1
[0670]
Table N20-2
[0671]
Table N20-3
[0672]
Table A20-1
[0673]
Table A20-2
[0674]
Table A20-3
[0675]
Table N21-1
[0676]
Table N21-2
[0677]
Table N21-3
[0678]
Table A21-1
[0679]
Table A21-2
[0680]
Table N22-1
[0681]
Table N22-2
[0682]
Table N22-3
[0683]
Table A22-1
[0684]
Table A22-2
[0685]
Table N23-1
[0686]
Table N23-2
[0687]
Table N23-3
[0688]
Table A23-1
[0689]
Table A23-2
[0690]
Table A23-3
[0691]
Table N24-1
[0692]
Table N24-2
[0693]
Table N24-3
[0694]
Table A24-1
[0695]
Table A24-2
[0696]
Table N25-1
[0697]
Table N25-2
[0698]
Table N25-3
[0699] [Table A25-1]
[0700] [Table A25-2]
[0701] [Table N26-1]
[0702] [Table N26-2]
[0703] [Table N26-3]
[0704] [Table A26]
[0705] In some embodiments, an anaerovector or anaeroVLP as described herein is a chimeric anaerovector or anaeroVLP. In some embodiments, a chimeric anaerovector or anaeroVLP further comprises one or more elements, polypeptides, or nucleic acids from a virus other than an Anellovirus.
[0706] In some embodiments, a chimeric anaerovector or anaeroVLP comprises multiple polypeptides (e.g., anaerovirus ORF1, ORF1 / 1, ORF1 / 2, ORF2, ORF2 / 2, ORF2 / 3, and / or ORF2t / 3) that comprise sequences from multiple different anaeroviruses (e.g., as described herein).
[0707] In some embodiments, the anaell...
Claims
1. (i) Structural jelly roll region of the anerovirus ORF1 molecule; (ii) The structural N22 domain of the anerovirus ORF1 molecule; and (iii) A portion of the structural C-terminal domain (CTD) of the anerovirus ORF1 molecule, wherein the portion of the structural CTD includes a deletion of approximately 70 to 80 amino acids at the C-terminal end compared to the corresponding wild-type structural CTD of the anerovirus ORF1 molecule. A polypeptide containing (for example, from the N-terminus to the C-terminus).
2. The polypeptide according to claim 1, wherein the polypeptide lacks a structural arginine-rich region of the anerovirus ORF1 molecule.
3. The polypeptide according to claim 1, further comprising a structural arginine-rich domain of the anerovirus ORF1 molecule.
4. The polypeptide according to claim 3, wherein the structural arginine-rich domain is located at the N-terminal end of the structural jelly roll region.
5. The polypeptide according to any one of claims 1, 3, and 4, wherein the polypeptide comprises a deletion of 35-40, 40-45, 45-50, 50-55, 55-60, 60-65, or 65-70 amino acids compared to the corresponding wild-type arginine-rich region of the anerovirus ORF1 molecule.
6. The polypeptide according to any one of claims 1 to 4, wherein the polypeptide comprises the structural N22 domain sequence of Ring2, or an amino acid sequence having at least 90% sequence identity thereto.
7. The polypeptide according to any one of claims 1 to 4, wherein the portion of the structural C-terminal domain has a sequence that has at least 90% sequence identity with the corresponding portion of the structural C-terminal domain sequence of Ring2.
8. The polypeptide according to any one of claims 1 to 4, wherein the polypeptide comprises the structural jelly roll domain sequence of Ring2, or an amino acid sequence having at least 90% sequence identity thereto.
9. The polypeptide according to any one of claims 1 to 4, further comprising a structurally hypervariable region (HVR) of the anerovirus ORF1 molecule.
10. The polypeptide according to any one of claims 1 to 4, wherein the polypeptide comprises the structurally hypervariable domain sequence of Ring2, or an amino acid sequence having at least 90% sequence identity thereto.
11. A protein complex comprising five ORF1 molecules, wherein each of the ORF1 molecules is (i) ORF1 domain, and (ii) Extrinsic surface moieties Including; A protein complex in which the exogenous surface portions of the five ORF1 molecules form a pentamer.
12. (a) Protein outer portion containing ORF1 molecule; and (b) Genetic elements containing heterologous nucleic acid sequences encoding exogenous effectors A particle containing; The aforementioned genetic element is enclosed within the proteinaceous outer portion; The aforementioned particles have one or more of the following characteristics: (i) The genetic element does not contain an anerovirus 5'UTR or origin of replication; (ii) The sequence encoding the exogenous effector accounts for at least 90% of the genetic elements; (iii) The heterogeneous nucleic acid sequence accounts for at least 90% of the genetic elements; (iv) The particles do not contain a detectable amount of polypeptide from the host cell, or contain fewer than 50 copies of polypeptide from the host cell; (v) The particles do not contain a detectable amount of nucleic acid molecules from the host cell, or contain fewer than two copies of nucleic acid molecules from the host cell; (vi) The particles contain the denaturant at a concentration of less than approximately 2 M; (vii) When introduced into cells, they do not substantially replicate; and / or (viiii) Having a symmetrical form, particle.
13. Protein outer portion containing approximately 40-80 copies of ORF1 molecule A particle containing; (i) Polynucleotide-free, (ii) Free from detectable levels of polynucleotides (iii) Does not contain polynucleotides longer than 1000 nucleotides. (iv) A polynucleotide that does not contain any consecutive nucleic acid sequence of at least 1,000 nucleotides in length having at least 75% sequence identity with a consecutive sequence in the wild-type anelovirus genus (Anellovirus), and / or (v) Polynucleotides that do not contain the anerovirus 5'UTR or origin of replication particle.
14. A composition comprising a plurality of particles according to claim 12 or 13, 10 per kilogram of the subject to be administered the composition 10 ~10 14 A composition containing nucleic acid molecules with a viral genome equivalent of less than a certain amount.
15. A method for creating an anero vector, (a) To provide a mixture containing a plurality of anerovirus ORF1 molecules, wherein at least 75% of the plurality of ORF1 molecules are not contained in particles containing about 40 to 80 copies of ORF1 molecules; (b) providing the mixture under conditions suitable for in vitro assembly of the anerovirus ORF1 molecule; and (c) Incubating the anerovirus ORF1 molecules with multiple genetic elements under conditions suitable for assembling the anerovirus ORF1 molecules so that each of them forms one or more anerovectors, each containing one or more of the genetic elements. A method that includes this.
16. A method for creating an anero vector, (i) The mixture provided in (a) is subjected to modification conditions; and The method of claim 15, wherein the mixture of (ii)(i) is subjected to non-denaturing conditions suitable for in vitro assembly of the anerovirus ORF1 molecule.
17. The mixture comprises a denaturing agent, The method according to claim 16, wherein the concentration of the denaturant in the mixture is reduced to a level suitable for in vitro assembly of the anerovirus ORF1 molecule.
18. (a) a proteinaceous outer portion containing an anerovirus ORF1 molecule; and (b) Exogenous effects; An anetro VLP comprising the effector, wherein the effector is encapsulated within the protein outer portion.
19. A method for creating an Anello VLP as described in Claim 18, (a) To provide a mixture containing a plurality of anerovirus ORF1 molecules, wherein at least 75% of the plurality of ORF1 molecules are not contained in particles containing about 40 to 80 copies of ORF1 molecules; (b) providing the mixture under conditions suitable for in vitro assembly of the anerovirus ORF1 molecule; and (c) Incubating the anerovirus ORF1 molecules with multiple effectors under conditions suitable for assembling the anerovirus ORF1 molecules so that each of them forms one or more aneroVLPs, each containing one or more of the effectors. A method that includes this.