Methods for targeted insertion of exogenous sequences in a cellular genome

By optimizing the timing and method of endonuclease activity and DNA template introduction, the method addresses inefficiencies in DSB repair, achieving precise and efficient targeted gene insertion in mammalian cells.

JP7750865B2Active Publication Date: 2025-10-07SELECTIS SOCIETY ANONYM
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Patent Information

Application Number
JP2022567237
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-10
Filing Date
2021-05-06
Publication Date
2025-10-07
Estimated Expiration
2041-05-06

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Abstract

The present disclosure provides a method for targeted insertion of an exogenous sequence at a genomic locus of a cell, wherein said insertion is induced by a sequence-specific endonuclease having cleavage activity at said locus for at least 5 hours prior to introduction of a DNA template containing said exogenous sequence into said cell.
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Description

[Technical Field]

[0001] Incorporation by Reference of Electronically Submitted Material The computer readable sequence listing, filed concurrently herewith and identified as follows, is hereby incorporated by reference in its entirety: One 368,372 byte ASCII (Text) file entitled "Sequence_Listing.txt", created on April 30, 2020.

[0002] FIELD OF THE INVENTION The present invention relates generally to the field of gene therapy, and more specifically to the treatment and prevention of genetic diseases and cancer. [Background technology]

[0003] background The ability to modify the expression of single genes and proteins is becoming one of the most important tools in molecular and cell biology. Several methodologies have been developed that allow for specific genetic manipulation in tissue culture cells, which are becoming colloquially known as "genome editing." These methods rely on nucleases that have been engineered to cleave specific genomic target sequences, including meganucleases, zinc finger nucleases (ZFNs), transcription activator-like effector nucleases (TALENs), and CRISPR (Clustered Regularly Interspaced Short Palindromic Repeats) nucleases (Gaj, Gersbach, Barbas, & III, 2013) (Figure 1).

[0004] In TALE-nucleases, a TAL effector DNA binding domain is fused to a DNA cleavage domain. Transcription activator-like effectors (TALEs) can be engineered to bind to virtually any desired DNA sequence, and thus, when combined with a nuclease, can cleave DNA at specific locations. TALENs use an engineered FokI endonuclease as the DNA cleavage domain. This non-specific cleavage domain, derived from the type II restriction endonuclease FokI, must dimerize to cleave DNA, thus requiring a pair of TALENs to target non-palindromic DNA sites.

[0005] TALENs create double-strand breaks (DSBs) in genomic DNA, which are subsequently repaired by the cellular DSB repair machinery. In mammalian cells, there are two major pathways for repairing DSBs: homologous recombination and nonhomologous end joining (NHEJ) (Liang, Han, Romanienko, & Jasin, 1998). NHEJ, the rejoining of DNA ends with little or no sequence homology, involves end processing, often resulting in the deletion or insertion of nucleotides at the break site before joining (Paques & Haber, 1999). Such modifications are likely central to the ability of mammalian cells to rejoin DNA ends with diverse structures. In contrast, homology-directed repair (HDR) of DSBs requires a significant length of sequence homology so that the DNA end from one molecule can invade the homologous sequence and initiate repair synthesis (Paques & Haber, 1999).

[0006] The scientific community has utilized these engineered nucleases to create edits (“knockouts” or “knockins”) in cell lines (Hsu, Lander, & Zhang, 2014) (Hsu et al., 2014) and even primary human T cells (Schumann et al., 2015) to control T cell function (Roth et al., 2018), and in some cases to generate CAR-T cells (chimeric antigen receptor-T cells) as described in WO2013176915 and Eyquem et al., 2017. A better understanding of how these tools function in cells is obviously necessary to better design the gene editing process in CAR-T engineering.

[0007] A recent study investigated the dynamics of the CRISPR-Cas9 system by generating DSBs in genomic DNA of cultured cell lines (Brinkman et al., 2018). However, measurements and modeling of the kinetics of broken DNA ends rejoining after Cas9-induced damage showed that the rate of DSB repair varied depending on the type of repair mechanism involved. Furthermore, the results showed that the repair process was prone to errors.

[0008] The kinetics of repair of DSBs induced by TALENs, another important gene editing tool that utilizes a different DNA cleavage mechanism, is not clearly understood.

[0009] WO 2015 / 057980 describes compositions and methods for use in gene therapy and genome engineering, in particular methods for integrating one or more transgenes into the genome of isolated cells, comprising sequentially introducing the transgene(s) and at least one nuclease into the cell, such that the nuclease mediates targeted integration of the transgene(s).

[0010] WO 2018 / 007263 describes a sequential gene editing method aimed at improving the genetic modification of primary human cells, in particular immune cells originating from individual donors or patients.

[0011] At a time when the gene editing field is exploring opportunities for targeted and controllable gene editing (such as gene knock-in) that is insufficient for simple gene KO but relies more on HDR than NHEJ repair pathways, the present invention provides a means to better utilize gene editing tools to improve gene integration efficiency.

[0012] This background information is provided for informational purposes only. It is not necessarily intended, nor should it be construed, as an admission that any of the preceding information constitutes prior art against the present invention. Summary of the Invention

[0013] overview Both the foregoing general description of the aspects and the following detailed description are exemplary and, therefore, should be understood as not limiting the scope of the aspects.

[0014] This study characterized the dynamics of NHEJ of TALEN-induced DSBs and further investigated the HDR rate of gene-edited cells in response to exogenous DNA repair templates. These findings shed new light on the mechanisms of DSB repair using engineered nucleases and how to design non-viral-mediated gene knock-in experiments.

[0015] In one aspect, the invention provides a method for targeted insertion of an exogenous sequence at a genomic locus of a cell, wherein the insertion is induced by a sequence-specific endonuclease having cleavage activity at the locus for at least 5 hours prior to introduction of a DNA template containing the exogenous sequence into the cell.

[0016] In some embodiments, the exogenous sequence is inserted into a genomic locus in the cell by homologous recombination, non-homologous end joining (NHEJ), homology-directed repair (HDR), microhomology-mediated end joining (MMEJ), or homology-mediated end joining (HMEJ).

[0017] In some embodiments, the sequence-specific endonuclease has cleavage activity for at least 5 hours (i.e., more than 5 hours) before the DNA template is introduced into the cell, hi some embodiments, the sequence-specific endonuclease has cleavage activity for at least 15 hours, preferably at least 18 hours, and more preferably at least 20 hours before the DNA template is introduced into the cell.

[0018] In some particular aspects, the present invention provides methods for targeted insertion of an exogenous sequence at a genomic locus of a cell, the method comprising at least the following steps: (a) transfecting a cell with a sequence-specific endonuclease polypeptide having cleavage activity at a genomic locus; (b) 5 to 25 hours after the transfection step of (a), introducing into the cell a DNA template comprising an exogenous sequence to be inserted into the locus by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ; and (c) culturing and selecting cells in which the exogenous sequence has been inserted into the locus.

[0019] In another aspect, the present invention provides a method for targeted insertion of an exogenous sequence at a genomic locus of a cell, the method comprising at least the steps of: (a) transfecting a cell with a sequence-specific endonuclease polynucleotide having cleavage activity at a genomic locus; (b) 10 to 30 hours after the transfection step of (a), introducing into the cells a DNA template comprising an exogenous sequence to be inserted into the locus by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ; and (c) culturing and selecting cells in which the exogenous sequence has been inserted into the locus.

[0020] In some embodiments, the cells are cultured at 25 to 40°C, preferably 28 to 38°C, and more preferably 30 to 37°C, at least in step (c).

[0021] In some embodiments, the nucleic acid encoding the sequence-specific endonuclease polynucleotide is mRNA.

[0022] In some embodiments, the DNA template is introduced 10 to 20 hours after transfection of the nucleic acid.

[0023] In some embodiments, the endonuclease is a TALE-nuclease. In some embodiments, the endonuclease is an RNA-guided endonuclease such as Cas9 or Cpf1. In some embodiments, the guide RNA associated with the RNA-guided endonuclease is introduced simultaneously with the RNA-guided endonuclease.

[0024] In some embodiments, the exogenous sequence is inserted into the locus by homologous recombination.

[0025] In some embodiments, the DNA template is double-stranded (dsDNA). In some embodiments, the dsDNA is a PCR product. In some embodiments, the dsDNA has a length of more than 2 kb, preferably more than 2.5 kb, more preferably more than 3 kb, and even more preferably 2 to 10 kb.

[0026] In some embodiments, the DNA template is a single-stranded polynucleotide. In some embodiments, the DNA template is a short single-stranded oligodeoxynucleotide (ssODN). In some embodiments, the ssODN has homologous arms of 50 to 200 bp, preferably 80 to 150 bp, and more preferably 90 to 120 bp.

[0027] In some embodiments, the method of the present invention comprises at least two transfection steps, wherein the first transfection step introduces a nucleic acid encoding a sequence-specific endonuclease into cells, and the second transfection step introduces a DNA template containing the exogenous sequence to be inserted. In some embodiments, the first transfection step is by electroporation or nanoparticle transformation. In some embodiments, the second transfection step is by electroporation, nanoparticle, or viral transformation.

[0028] In some embodiments, the cells are mammalian cells, preferably primate cells, more preferably human cells. In some embodiments, the cells are primary cells. In some embodiments, the cells are immune cells, preferably T cells or NK cells. In some embodiments, the cells are primary T cells, more preferably primary T cells derived from a patient, such as tumor-infiltrating lymphocytes (TILs), or primary T cells derived from a donor.

[0029] In some embodiments, the exogenous sequence is inserted into a locus encoding a protein selected from TCR, β2m, PD1, CTLA4, TIM3, TGFβ, TGFβR, IL-10, IL10R, IL27RA, STAT1, STAT3, ILT2, ILT4, JAK2, AURKA, DNMT3, MT1A, MT2A, PTGER2, miR21, mir26A, miR101 miRNA31, MT1A, MT2A, PTGER2 GCN2, PRDM1, CD52, GR, HPRT, GGH, GM-CSF, or DCK.

[0030] In some embodiments, the insertion of the exogenous sequence suppresses expression of an endogenous gene present at the locus.

[0031] In some embodiments, the exogenous sequence is inserted into a locus selected from CD25, CD69, or those listed in Table 1 (list of loci upregulated in tumor-exhausted infiltrating lymphocytes), Table 2 (list of loci upregulated in hypoxic tumor conditions), or Table 3.

[0032] In some embodiments, the exogenous sequence encodes a polypeptide selected from a chimeric antigen receptor (CAR), a recombinant TCR, dnTGFβRII, sgp130, a mutated IL6Ra (mutIL6Ra), HLA-E, HLA-G, IL-2, IL-12, IL-15, IL-18, a FOXP3 inhibitor, a secreted inhibitor of tumor-associated macrophages (TAMs), e.g., a CCR2 / CCL2 neutralizing agent, an immunogenic peptide, or a secreted antibody, e.g., an anti-IDO1, anti-IL10, anti-PD1, anti-PDL1, anti-IL6, anti-GM-CSF, or anti-PGE2 antibody.

[0033] In some embodiments, the exogenous sequence comprises a sequence to correct a mutated endogenous gene present in a genomic locus, such as IL7R, CD45, IL2RG, JAK3, RAG1, RAG2, ARTEMIS, ADA, TRAC, CCR5, RFX5, RFXAP, RFXANK(B), CIITA, ZAP-70, CRAC, ORAI1, STIM1, POLA1, MAP3K14, GATA2, MCM4, IRF8, RTEL1, FCGR3A, Ncr1, TAP1, TAP2, RFX5, RFXAP, RFXANK(B), CIITA, ZAP-70, CRAC, ORAI1, and STIM1 (preferably in NK cells).

[0034] In some embodiments, the cells are hematopoietic stem cells (HSCs). In some embodiments, the exogenous sequence is inserted into a locus expressed in HSC-derived lineage cells, such as CCR5, TMEM119, CD11B, β2m, CX3CR1, or S100A9. In some embodiments, the exogenous sequence comprises a sequence encoding or correcting: - HBB to treat sickle cell anemia (SCA); - CD40L to treat X-linked hyperimmunoglobulin M syndrome; - IDUA for treating mucopolysaccharidosis type I (Scheie, Hurler-Scheie, or Hurler syndrome), - IDS for treating mucopolysaccharidosis type II (Hunter), - ARSB for treating mucopolysaccharidosis type VI (Maroteaux-Lamy), - GUSB for treating mucopolysaccharidosis type VII (Sly), - ABCD1 for treating X-linked adrenoleukodystrophy, - GALC for treating globoid cell leukodystrophy (Krabbe), - ARSA for treating metachromatic leukodystrophy, - GBA for treating Gaucher disease, - FUCA1 for treating fucosidosis, - MAN2B1 for treating alpha-mannosidosis, - AGA for treating aspartylglucosaminuria, - ASAH1 for treating Farber disease, - HEXA for treating Tay-Sachs disease, - GAA for treating Pompe disease, - SMPD1 for treating Niemann-Pick disease, - DMD to treat Duchenne muscular dystrophy - LIPA for treating Wolman syndrome, - CDKL5 for treating a disease associated with a CDKL5 deficiency, or - ADCY3, BDNF, KSR2, LEP for treating severe obesity.

[0035] In another aspect, the present invention provides a method for producing therapeutic cells, comprising the steps of: - providing primary immune cells from a donor or patient or derived from human iPS or hES cells; - performing targeted insertion according to the methods herein; and - purifying and freezing said cells for later use as a therapeutic composition.

[0036] In some embodiments, the methods of the present invention do not include steps involving viral vectors.

[0037] [The present invention 1001] 1. A method for targeted insertion of an exogenous sequence at a genomic locus of a cell, wherein the insertion is induced by a sequence-specific endonuclease having cleavage activity at the locus, and the sequence-specific endonuclease has cleavage activity at the locus for at least 5 hours prior to introduction of a DNA template containing the exogenous sequence into the cell. [The present invention 1002] 1001. The method of claim 1001, wherein said exogenous sequence is inserted into said genomic locus in the cell by homologous recombination or non-homologous end joining (NHEJ). [The present invention 1003] 1001. The method of claim 1001, wherein said exogenous sequence is inserted into said genomic locus in the cell by homologous recombination. [The present invention 1004] Any of the methods of inventions 1001 to 1003, wherein the sequence-specific endonuclease has cleavage activity for at least 15 hours, preferably at least 18 hours, more preferably at least 20 hours before the DNA template is introduced into the cell. [The present invention 1005] 1. A method for targeted insertion of an exogenous sequence at a genomic locus of a cell, comprising at least the following steps: (a) transfecting the cell with a sequence-specific endonuclease polypeptide having cleavage activity at a genomic locus; (b) 5 to 25 hours after the transfection step of (a), introducing into the cells a DNA template comprising an exogenous sequence to be inserted into the locus by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ; and (c) culturing and selecting cells in which the exogenous sequence has been inserted into the locus; A method comprising: [The present invention 1006] 1. A method for targeted insertion of an exogenous sequence at a genomic locus of a cell, comprising at least the following steps: (a) transfecting the cell with a sequence-specific endonuclease polynucleotide having cleavage activity at a genomic locus; (b) 10 to 30 hours after the transfection step of (a), introducing into the cells a DNA template comprising an exogenous sequence to be inserted into the locus by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ; and (c) culturing and selecting cells in which the exogenous sequence has been inserted into the locus; A method comprising: [The present invention 1007] 1006. The method of claim 10, wherein said sequence-specific endonuclease polynucleotide is transfected as mRNA. [The present invention 1008] The method of any one of claims 1005 to 1007, wherein the DNA template is introduced 10 to 20 hours after transfection of the endonuclease polynucleotide and / or polypeptide. [The present invention 1009] The method of any one of claims 1001 to 1008, wherein said endonuclease is a TALE-nuclease. [The present invention 1010] 1009. The method of any of claims 1001 to 1008, wherein said endonuclease is an RNA-guided endonuclease, such as Cas9 or Cpf1. [The present invention 1011] 10. The method of claim 10, wherein a guide RNA that associates with said RNA-guided endonuclease is introduced simultaneously with said RNA-guided endonuclease. [The present invention 1012] 1009. The method of any of claims 1001 to 1008, wherein said exogenous sequence is inserted into said locus by homologous recombination. [The present invention 1013] The method of any one of claims 1001 to 1012, wherein the DNA template is double-stranded (dsDNA). [The present invention 1014] The method of claim 10, wherein the dsDNA is a PCR product. [The present invention 1015] 1015. The method of claim 1013 or 1014, wherein said dsDNA has a length of more than 2 kb, preferably more than 2.5 kb, more preferably more than 3 kb, even more preferably between 2 and 10 kb. [The present invention 1016] The method of any one of claims 1001 to 1012, wherein the DNA template is a single-stranded polynucleotide. [The present invention 1017] The method of any one of claims 1001 to 1016, wherein said DNA template is a short single-stranded oligodeoxynucleotide (ssODN). [The present invention 1018] The method of the present invention 1017, wherein the ssODN has homologous arms consisting of 50 to 200 bp, preferably 80 to 150 bp, more preferably 90 to 120 bp. [The present invention 1019] Any of the methods of claims 1001 to 1018, comprising at least two transfection steps, wherein the first transfection step introduces the sequence-specific endonuclease into the cells, and the second transfection step introduces the DNA template containing the exogenous sequence to be inserted. [The present invention 1020] 1019. The method of claim 1019, wherein said first transfection step is by electroporation or nanoparticle transformation. [The present invention 1021] 1019. The method of claim 1019, wherein said second transfection step is by electroporation, nanoparticles, or viral transformation. [The present invention 1022] The method of any of claims 1001 to 1021, wherein said cells are mammalian cells, preferably primate cells, more preferably human cells. [The present invention 1023] The method of any one of claims 1001 to 1022, wherein the cells are primary cells. [The present invention 1024] The method of any of claims 1001 to 1023, wherein said cell is an immune cell, preferably a T cell or an NK cell. [The present invention 1025] The method of any of claims 1001 to 1024, wherein said cells are primary T cells, more preferably primary T cells derived from a patient, such as tumor infiltrating lymphocytes (TILs), or primary T cells derived from a donor. [The present invention 1026] The method of any one of claims 1005 to 1025, wherein the cells are cultured at 25 to 40°C, preferably 28 to 38°C, more preferably 30 to 37°C, at least in the step (c). [The present invention 1027] 10. The method of any of claims 1001 to 1026, wherein the exogenous sequence is inserted into a locus encoding a protein selected from TCR, β2m, PD1, CTLA4, TIM3, TGFβ, TGFβR, IL-10, IL10R, IL27RA, STAT1, STAT3, ILT2, ILT4, JAK2, AURKA, DNMT3, MT1A, MT2A, PTGER2, miR21, mir26A, miR101 miRNA31, MT1A, MT2A, PTGER2 GCN2, PRDM1, CD52, GR, HPRT, GGH, GM-CSF, or DCK. [The present invention 1028] The method of any of claims 1001 to 1027, wherein insertion of said exogenous sequence suppresses expression of an endogenous gene present at said locus. [The present invention 1029] Any of the methods of claims 1001 to 1028, wherein the exogenous sequence is inserted into a locus selected from CD25, CD69, or those listed in Table 1 (list of loci upregulated in tumor-exhausted infiltrating lymphocytes) or Table 2 (list of loci upregulated in hypoxic tumor conditions). [The present invention 1030] 1029. The method of any of claims 1001 to 1029, wherein the exogenous sequence encodes a polypeptide selected from a chimeric antigen receptor (CAR), a recombinant TCR, dnTGFβRII, sgp130, a mutated IL6Ra (mutIL6Ra), HLA-E, HLA-G, IL-2, IL-12, IL-15, IL-18, a FOXP3 inhibitor, a secretory inhibitor of tumor-associated macrophages (TAMs), e.g., a CCR2 / CCL2 neutralizing agent, an immunogenic peptide, or a secretory antibody, e.g., an anti-IDO1, anti-IL10, anti-PD1, anti-PDL1, anti-IL6, anti-GM-CSF, or anti-PGE2 antibody. [The present invention 1031] 1029. The method of any of claims 1001 to 1029, wherein the exogenous sequence comprises a sequence for correcting a mutated endogenous gene present at the locus, such as IL7R, CD45, IL2RG, JAK3, RAG1, RAG2, ARTEMIS, ADA, TRAC, CCR5, RFX5, RFXAP, RFXANK(B), CIITA, ZAP-70, CRAC, ORAI1, STIM1, POLA1, MAP3K14, GATA2, MCM4, IRF8, RTEL1, FCGR3A, Ncr1, TAP1, TAP2, RFX5, RFXAP, RFXANK(B), CIITA, ZAP-70, CRAC, ORAI1, and STIM1 (preferably in NK cells). [The present invention 1032] The method of any of claims 1001 to 1023, wherein said cells are hematopoietic stem cells (HSCs). [The present invention 1033] 103. The method of claim 1032, wherein said exogenous sequence is inserted into a locus expressed in HSC-derived lineage cells, such as CCR5, TMEM119, CD11B, β2m, CX3CR1, or S100A9. [The present invention 1034] the exogenous sequence is - HBB to treat sickle cell anemia (SCA); - CD40L to treat X-linked hyperimmunoglobulin M syndrome; - IDUA for treating mucopolysaccharidosis type I (Scheie, Hurler-Scheie, or Hurler syndrome), - IDS for treating mucopolysaccharidosis type II (Hunter), - ARSB for treating mucopolysaccharidosis type VI (Maroteaux-Lamy), - GUSB for treating mucopolysaccharidosis type VII (Sly), - ABCD1 for treating X-linked adrenoleukodystrophy, - GALC for treating globoid cell leukodystrophy (Krabbe), - ARSA for treating metachromatic leukodystrophy, - GBA for treating Gaucher disease, - FUCA1 for treating fucosidosis, - MAN2B1 for treating alpha-mannosidosis, - AGA for treating aspartylglucosaminuria, - ASAH1 for treating Farber disease, - HEXA for treating Tay-Sachs disease, - GAA for treating Pompe disease, - SMPD1 for treating Niemann-Pick disease, - DMD to treat Duchenne muscular dystrophy - LIPA for treating Wolman syndrome, - CDKL5 for treating a disease associated with a CDKL5 deficiency, or - ADCY3, BDNF, KSR2, LEP for the treatment of severe obesity 1032 or 1033, comprising a sequence encoding or correcting [This invention 1035] The following steps: - providing primary immune cells from a donor or patient or derived from human iPS or hES cells; - performing targeted insertion according to any of the methods of claims 1001 to 1035; - purifying and freezing said cells for later use as a therapeutic composition. 1. A method for producing therapeutic cells, comprising: [The present invention 1036] The method of any of claims 1001 to 1035, which does not include a step involving a viral vector. Other objects, features, and advantages of the present invention will become apparent from the following detailed description. However, it should be understood that the detailed description and specific examples, while indicating particular embodiments of the present invention, are given by way of illustration only, since various changes and modifications within the spirit and scope of the invention will become apparent to those skilled in the art from this detailed description. [Brief explanation of the drawings]

[0038] Those skilled in the art will appreciate that the following drawings are for illustrative purposes only and are not intended to limit the scope of the present teachings in any way.

[0039] [Figure 1A] A. Scheme of the T cell activation and transfection protocol. [Figure 1B] B. Expression of TALEN proteins at different time points. Western blot using anti-RVD antibody (TALEN, upper panel) or anti-actin antibody (control, lower panel). [Figure 1C] C. Scheme of the qPCR strategy for measuring unbound DSBs created by TALENs. [Figure 1D] D. Fold change of unbound DSBs at either the TRAC TALEN target site (upper panel) or the B2M TALEN target site (lower panel). Experiments were performed with three different donors. [Figure 2A] A. Time course experiment showing the gradual accumulation of indels at the TRAC (upper panel) or B2M (lower panel) locus. Experiments were performed in three different donors. [Figure 2B] B. Deletion size over time. The abundance of deletions of different sizes at the TALEN target site TRAC (upper panel) or B2M (lower panel) in the same sample was determined by deep sequencing. Experiments were performed with three different donors. [Figure 3A] A. Design of 20 bp insert ssODN. LHA: left homologous arm. RHA: right homologous arm. [Figure 3B]B. Percentage of targeted integration (KI) depending on the timing of ssODN transfection. [Figure 3C] C. Increased targeted integration fold compared to co-transfection. [Figure 4A] A. Scheme of the CD22CAR repair template. [Figure 4B] B. Detection of dsDNA repair templates by qPCR according to their timing of transfection allows the calculation of the half-life of the dsDNA repair templates. Experiments were performed with three different donors. [Figure 4C] C. Two-step transfection scheme. Cells were transfected with a site-specific nuclease targeting TRAC for various times before a second transfection of a dsDNA repair template encoding a CD22CAR insert. [Figure 4D] D. Percentage of CD22CAR+ cells depending on the timing of transfection of dsDNA repair template. Experiments were performed with three donors. [Figure 5] The transfection procedure did not cause increased toxicity in the edited T cells. [Figure 6] CD22CAR dsDNA Cas9-mediated targeted integration efficiency after co-transfection (0 hours) or delayed dsDNA delivery (at the indicated time points). Targeted integration efficiency was normalized to co-transfection, and error bars represent standard deviation (n=2). [Figure 7] A. Design of two ssODN integration strategies at the HBB locus. B. ssODN-targeted integration frequency in HSCs upon co-transfection (Co-TF) or 20-hour delayed ssODN delivery (20-hour delay). C. Increased ssODN-targeted integration fold compared to co-transfection. DETAILED DESCRIPTION OF THE INVENTION

[0040] Detailed Description Unless specifically defined herein, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art of gene therapy, biochemistry, genetics, and molecular biology.

[0041] In carrying out or testing the present invention, all methods and materials similar or equivalent to those described herein can be used, and suitable methods and materials are described herein.All publications, patent applications, patents and other references mentioned herein are incorporated by reference in their entirety.In case of conflict, the present specification, including definitions, will prevail.Furthermore, materials, methods and examples are merely illustrative and are not intended to be limiting unless otherwise specified.

[0042] The practice of the present invention will employ, unless otherwise indicated, conventional techniques of cell biology, cell culture, molecular biology, transgenic biology, microbiology, recombinant DNA, and immunology, which are within the skill of the art and are fully explained in the literature. For example, Current Protocols in Molecular Biology (Frederick M. AUSUBEL, 2000, Wiley and son Inc, Library of Congress, USA);Molecular Cloning: A Laboratory Manual, Third Edition, (Sambrook et al, 2001, Cold Spring Harbor, New York: Cold Spring Harbor Laboratory Press);Oligonucleotide Synthesis (MJ Gait ed., Nucleic Acid Hybridization (BD Harries & SJ Higgins eds. 1984);Transcription And Translation (BD Hames & SJ Higgins eds. 1984);Culture Of Animal Cells (RI Freshney, Alan R. Liss, Inc., 1987);Immobilized Cells And Enzymes (IRL Press, 1986);B. Perbal, A Practical Guide To Molecular Cloning (1984); Methods In ENZYMOLOGY (J. Abelson and M. Simon, eds.-in-chief, Academic Press, Inc., New York) series, specifically, Vol. 154 and 155 (Wu et al. eds.) and Vol. 185, "Gene Expression Technology" (D. Goeddel, ed.); See Gene Transfer Vectors For Mammalian Cells (J. H. Miller and M. P. Calos eds., 1987, Cold Spring Harbor Laboratory); Immunochemical Methods In Cell And Molecular Biology (Mayer and Walker, eds., Academic Press, London, 1987); Handbook Of Experimental Immunology, Volumes I-IV (D. M. Weir and C. C. Blackwell, eds., 1986); and Manipulating the Mouse Embryo, (Cold Spring Harbor Laboratory Press, Cold Spring Harbor, N.Y., 1986).

[0043] For purposes of interpreting this specification, the following definitions apply, and wherever applicable, terms used in the singular include the plural, and vice versa. If any of the definitions set forth below conflict with the usage of a word in any other document, including any document incorporated herein by reference, the definition below shall always control for purposes of interpreting this specification and its associated claims, unless a contrary meaning is clearly intended (e.g., in the document where the term is originally used). The use of "or" means "and / or" unless expressly stated otherwise. As used in this specification and claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. For example, the term "a cell" includes multiple cells, including mixtures thereof. The use of "comprise," "comprises," "comprising," "include," "includes," and "including" are interchangeable and are not intended to be limiting. Additionally, where the description of one or more embodiments uses the term "comprising," those skilled in the art will understand that in some specific instances, one or more embodiments can alternatively be described using the language "consisting essentially of" and / or "consisting of."

[0044] As used herein, the term "about" means plus or minus 10% of the numerical value of the number with which it is being used.

[0045] Where a numerical limit or range is stated herein, the endpoints are included, and all values ​​and subranges within the numerical limit or range are also specifically included as if they were expressly written out.

[0046] In one aspect, the invention provides a method for targeted insertion of an exogenous sequence at a genomic locus of a cell, wherein the insertion is induced by a sequence-specific endonuclease having cleavage activity at the locus for at least 5 hours prior to introduction of a DNA template comprising the exogenous sequence into the cell.

[0047] In another aspect, the present invention provides a method for targeted insertion of an exogenous sequence at a genomic locus of a cell, the method comprising at least the following steps: (a) transfecting a cell with a sequence-specific endonuclease polypeptide having cleavage activity at a genomic locus; (b) 5 to 25 hours after the transfection step of (a), introducing into the cell a DNA template comprising an exogenous sequence to be inserted into the locus by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ; and (c) culturing and selecting cells in which the exogenous sequence has been inserted into the locus.

[0048] In another aspect, the present invention provides a method for targeted insertion of an exogenous sequence at a genomic locus of a cell, the method comprising at least the steps of: (a) transfecting a cell with a sequence-specific endonuclease polynucleotide having cleavage activity at a genomic locus; (b) 10 to 30 hours after the transfection step of (a), introducing into the cell a DNA template comprising an exogenous sequence to be inserted into the locus by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ; and (c) culturing and selecting cells in which the exogenous sequence has been inserted into the locus.

[0049] In some embodiments, the cells are cultured at about 25 to about 40°C, preferably about 28 to about 38°C, and more preferably about 30 to about 37°C, at least in step (c).

[0050] In some embodiments, the method comprises at least two transfection steps, wherein the first transfection step introduces a sequence-specific endonuclease into cells as a polypeptide or polynucleotide, and the second transfection step introduces a DNA template containing the exogenous sequence to be inserted. In some embodiments, the first transfection step is by electroporation or nanoparticle transformation. In some embodiments, the second transfection step is by electroporation, nanoparticle, or viral transformation. In some embodiments, the method of the present invention does not comprise a step involving a viral vector.

[0051] In another aspect, the present invention provides a method for producing therapeutic cells, comprising the steps of: providing primary immune cells from a donor or patient or derived from human iPS or hES cells; performing targeted insertion according to the methods herein; and purifying and freezing the cells for subsequent use as a therapeutic composition.

[0052] genomic loci As used herein, the term "locus" refers to the specific physical location of a DNA sequence (e.g., a gene) within a genome. The term "locus" can refer to the specific physical location of a rare-cutting endonuclease target sequence on a chromosome or on the genomic sequence of an infectious agent. Such a locus can contain the target sequence recognized and / or cleaved by the sequence-specific endonuclease according to the present invention.

[0053] In some embodiments, the exogenous sequence is inserted into a locus encoding a protein selected from TCR, β2m, PD1, CTLA4, TIM3, TGFβ, TGFβR, IL-10, IL10R, IL27RA, STAT1, STAT3, ILT2, ILT4, JAK2, AURKA, DNMT3, MT1A, MT2A, PTGER2, miR21, mir26A, miR101 miRNA31, MT1A, MT2A, PTGER2 GCN2, PRDM1, CD52, GR, HPRT, GGH, GM-CSF, or DCK.

[0054] In some embodiments, the insertion of the exogenous sequence suppresses expression of an endogenous gene present at the locus.

[0055] In some embodiments, insertion of the exogenous sequence corrects the mutation at the locus, thereby gene editing the mutation at the locus.

[0056] In some embodiments, the insertion of an exogenous sequence allows for the expression of a protein that is not endogenous to the locus.

[0057] In some embodiments, the genetically modified cells include HSCs or iPS cells, and the cells include a transgene integrated into a locus that is transcriptionally active in a lineage of the HSC or iPS cell, such as a microglial cell, where the locus is selected from TMEM119, CD11B, B2m, CX3CR1, or S100A9, and the transgene is under the transcriptional control of the endogenous promoter of the locus.

[0058] In some embodiments, the exogenous sequence is inserted into a locus selected from CD25, CD69, or those listed in Table 1 (list of loci upregulated in tumor-exhausted infiltrating lymphocytes) or Table 2 (list of loci upregulated in hypoxic tumor conditions).

[0059] Table 1. List of loci upregulated in tumor-infiltrating lymphocytes (pooled from multiple tumors) useful for genetic integration of exogenous coding sequences according to the present invention. TIFF0007750865000001.tif150128

[0060] Table 2. List of loci upregulated in hypoxic tumor conditions useful for genetic integration of exogenous coding sequences according to the present invention. TIFF0007750865000002.tif211137TIFF0007750865000003.tif219137TIFF00077508650 00004.tif219137TIFF0007750865000005.tif219137TIFF0007750865000006.tif139137

[0061] In some embodiments, the genomic locus is an activated hematopoietic stem cell or lineage thereof, e.g., a microglial cell. In some embodiments, the genomic locus is TMEM119, S100A9, CD11B, B2m, Cx3cr1, MERTK, CD164, Tlr4, Tlr7, Cd14, Fcgr1a, Fcgr3a, TBXAS1, DOK3, ABCA1, TMEM195, MR1, CSF3R, FGD4, TSPAN14, TGFBRI, CCR5, GPR34, SERPINE2, SLCO2B1, P2ry12, Olfml3, P2ry13, Hexb, Rhob, Jun, Rab3il1, Ccl2, Fcrls, Scoc, Sigl ech, Slc2a5, Lrrc3, Plxdc2, Usp2, Ctsf, Cttnbp2nl, Atp8a2, Lgmn, Mafb, Egr1, Bhlhe41, Hpgds, Ctsd, Hspa1a, Lag3, Csf1r, Adamts1, F11r, Go lm1, Nuak1, Crybb1, Ltc4s, Sgce, Pla2g15, Ccl3l1, Abhd12, Ang, Ophn1, Sparc, Pros1, P2ry6, Lair1, Il1a, Epb41l2, Adora3, Rilpl1, Pmepa1, C cl13, Pde3b, Scamp5, Ppp1r9a, Tjp1, Ak1, B4galt4, Gtf2h2, Trem2, Ckb, Acp2, Pon3, Agmo, Tnfrsf17, Fscn1, St3gal6, Adap2, Ccl4, Entpd1, Tm em86a, Kctd12, Dst, Ctsl2, Abcc3, Pdgfb, Pald1, Tubgcp5, Rapgef5, Stab1, Lacc1, Tmc7, Nrip1, Kcnd1, Tmem206, Hps4, Dagla, Extl3, Mlph, Ar hgap22, Cxxc5, P4ha1, Cysltr1, Fgd2, Kcnk13, Gbgt1, C18orf1, Cadm1, Bco2, Adrb1, C3ar1, Large, Leprel1, Liph, Upk1b, P2rx7, Slc46a1, Ebf 3, Ppp1r15a, Il10ra, Rasgrp3, Fos, Tppp, Slc24a3, Havcr2, Nav2, Apbb2, Clstn1, Blnk, Gnaq, Ptprm, Frmd4a, Cd86, Tnfrsf11a, Spint1, Ppm1l,Selected from the group consisting of Tgfbr2, Cmklr1, Tlr6, Gas6, Hist1h2ab, Atf3, Acvr1, Abi3, Lrp12, Ttc28, Plxna4, Adamts16, Rgs1, Icam1, Snx24, Ly96, Dnajb4, and Ppfia4.

[0062] In some embodiments, the locus corresponds to an intronic polynucleotide sequence. In some embodiments, the exogenous sequence is a coding sequence and is inserted between the first and second endogenous exons of the genomic locus.

[0063] In some embodiments, the methods have the advantage of preventing the decay of transcripts encoding endogenous exon regions while allowing their transcription along with the exogenous coding sequence.

[0064] Generally, the method can include introducing into a cell a DNA template that includes an exogenous sequence, where the exogenous sequence includes a coding sequence, and the template includes, in a 5' to 3' direction: a first homologous polynucleotide sequence that is homologous to an intron sequence upstream of the insertion site, while preferably not containing a branch point; a first strong splice site sequence, preferably including a branch point and splice acceptor; a first sequence encoding the 2A self-cleaving peptide; an exogenous sequence encoding a protein of interest; · a second sequence encoding the 2A self-cleaving peptide; A copy of the coding sequence of the first exon, optionally rewritten; a second strong splice site sequence, preferably including a splice donor; and a second homologous polynucleotide sequence that is homologous to the intron sequence downstream of the insertion site; Including, A DNA template containing the exogenous sequence is integrated into the intron sequence, preferably by homologous recombination, and the exogenous coding sequence, together with the first exon and preferably the second (endogenous) exon, or a copy thereof, is transcribed at the endogenous locus.

[0065] sequence-specific endonucleases According to the methods herein, a cell is provided with a sequence-specific endonuclease having cleavage activity at a genomic locus. In some embodiments, insertion of an exogenous sequence is induced by the sequence-specific endonuclease having cleavage activity at the locus for at least 5 hours prior to introduction of a DNA template containing the exogenous sequence into the cell.

[0066] By "sequence-specific endonuclease" is meant any active molecule, such as a protein, that has endonuclease activity and the ability to specifically recognize a polynucleotide sequence (preferably at least 9 bp, more preferably at least 10 bp, even more preferably at least 12 bp in length) selected from a genomic locus with a view to altering expression of the genomic locus.

[0067] The term "endonuclease" refers to any wild-type or mutant enzyme capable of catalyzing the hydrolysis (cleavage) of bonds between nucleic acids within DNA or RNA molecules, preferably DNA molecules. Endonucleases do not cleave DNA or RNA molecules regardless of their sequence, but rather recognize and cleave DNA or RNA molecules at specific polynucleotide sequences, further referred to as "target sequences" or "target sites."

[0068] The term "cleavage" refers to the destruction of the covalent backbone of a polynucleotide. Cleavage can be initiated by a variety of methods, including, but not limited to, enzymatic or chemical hydrolysis of phosphodiester bonds. Both single-strand and double-strand cleavage are possible, and double-strand cleavage can occur as a result of two separate single-strand cleavage events. Double-stranded DNA, RNA, or DNA-RNA hybrid cleavage can result in the generation of either blunt ends or cohesive ends.

[0069] In some embodiments, the sequence-specific endonuclease is provided to the cell as a polypeptide. In some embodiments, the sequence-specific endonuclease is provided to the cell as a nucleic acid encoding the endonuclease. In some embodiments, the nucleic acid encoding the sequence-specific endonuclease is mRNA. In some embodiments, the nucleic acid encoding the sequence-specific endonuclease is DNA.

[0070] As used herein, "nucleic acid" or "polynucleotide" refers to nucleotides and / or polynucleotides, such as deoxyribonucleic acid (DNA) or ribonucleic acid (RNA), oligonucleotides, fragments produced by polymerase chain reaction (PCR), and fragments produced by ligation, cleavage, endonuclease action, and exonuclease action. Nucleic acid molecules can be composed of monomers that are naturally occurring nucleotides (such as DNA and RNA) or analogs of naturally occurring nucleotides (e.g., enantiomeric forms of naturally occurring nucleotides), or combinations of both. Modified nucleotides can have alterations in the sugar moiety and / or the pyrimidine or purine base moiety. Sugar modifications include, for example, replacement of one or more hydroxyl groups with halogens, alkyl groups, amines, and azide groups, or the sugar can be functionalized as an ether or ester. Additionally, the entire sugar moiety can be replaced with sterically and electronically similar structures, such as azasugars and carbocyclic sugar analogs. Examples of modifications in the base moiety include alkylated purines and pyrimidines, acylated purines or pyrimidines, or other well-known heterocyclic substitutes. Nucleic acid monomers can be linked by phosphodiester bonds or analogs of such linkages. Nucleic acids can be either single-stranded or double-stranded.

[0071] The terms "polypeptide," "peptide," and "protein" are used interchangeably to refer to a polymer of amino acid residues. The terms also apply to amino acid polymers in which one or more amino acids are chemical analogues or modified derivatives of a corresponding naturally occurring amino acid.

[0072] Endonucleases can be classified as rare-cutting endonucleases when they have a polynucleotide recognition site that is typically greater than 10 base pairs (bp) in length. In some embodiments, rare-cutting endonucleases have a recognition site of 14 to 55 bp. Rare-cutting endonucleases significantly increase homologous recombination by inducing DNA double-strand breaks (DSBs) at defined loci, thereby enabling gene repair or gene insertion therapy (Pingoud, A. and GH Silva (2007). Nat. Biotechnol. 25(7): 743-4).

[0073] A "zinc finger DNA-binding protein" (or binding domain) is a protein or domain within a larger protein that binds to DNA in a sequence-specific manner through one or more zinc fingers, which are regions of amino acid sequence within the binding domain whose structure is stabilized through the coordination of zinc ions. The term zinc finger DNA-binding protein is often abbreviated as zinc finger protein or ZFP.

[0074] A "TALE DNA binding domain" or "TALE" is a polypeptide containing one or more TALE repeat domains / units. The repeat domains are involved in the binding of a TALE to its cognate target DNA sequence. A single "repeat unit" (also referred to as a "repeat") is typically 33-35 amino acids in length and exhibits at least some sequence homology to other TALE repeat sequences within naturally occurring TALE proteins.

[0075] Zinc finger and TALE binding domains can be "engineered" to bind to a given nucleotide sequence, for example, through manipulation (changing one or more amino acids) of the recognition helix region of a naturally occurring zinc finger or TALE protein. Therefore, engineered DNA binding proteins (zinc fingers or TALEs) are non-naturally occurring proteins. A non-limiting example of a method for engineering DNA binding proteins is design and selection. Designed DNA binding proteins are non-naturally occurring proteins whose design / composition results primarily from rational criteria. Rational criteria for design include the application of substitution rules and computational algorithms to process information in databases that store information on existing ZFP and / or TALE design and binding data. See, e.g., U.S. Patent Nos. 6,140,081; 6,453,242; and 6,534,261; also WO 98 / 53058; WO 98 / 53059; WO 98 / 53060; WO 02 / 016536 and WO 03 / 016496 and U.S. Publication No. 20110301073.

[0076] In some embodiments, sequence-specific endonuclease is engineered and not found in nature.In some embodiments, endonuclease is produced using processes such as phage display, interaction trap or hybrid selection.See, for example, U.S. Patent Nos. 5,789,538; 5,925,523; 6,007,988; 6,013,453; 6,200,759; and WO 95 / 19431; WO 96 / 06166; WO 98 / 53057; WO 98 / 54311; WO 00 / 27878; WO 01 / 60970; WO 01 / 88197; WO 02 / 099084 and U.S. Patent Application Publication No. 2011 / 0301073.

[0077] In some embodiments, the sequence-specific endonuclease is a TALE-nuclease, such as a TALE-nuclease (commercially available under the Cellectis trademark TALEN®). In some embodiments, the endonuclease is an RNA-guided endonuclease, such as Cas9 or Cpf1. In some embodiments, a guide RNA associated with the RNA-guided endonuclease is introduced simultaneously with the RNA-guided endonuclease. In some embodiments, the sequence-specific endonuclease cleaves one or several of the target sequences reported in Tables 1-3 herein.

[0078] In some embodiments, the sequence-specific endonuclease can be a chimeric polypeptide comprising a DNA-binding domain and another domain that exhibits catalytic activity, which can be a nickase or double nickase that preferentially accomplishes gene insertion by creating cohesive ends that facilitate gene integration by homologous recombination.

[0079] In some embodiments, the sequence-specific endonuclease induces NHEJ or homologous recombination mechanisms, which has the advantage of introducing stable and heritable mutations into genomic loci that are expressed in cells.

[0080] The nucleic acid sequence recognized by the sequence-specific endonuclease is within a genomic locus, and the recognized sequence is typically selected to be rare or unique in the genome of the cell, or more broadly, the human genome, as can be determined using software and data available from the Human Genome Database, such as http: / / www.ensembl.org / index.html.

[0081] Exemplary selection methods applicable to DNA binding domains, including phage display and two-hybrid systems, are disclosed in U.S. Patent Nos. 5,789,538; 5,925,523; 6,007,988; 6,013,453; 6,410,248; 6,140,466; 6,200,759; and 6,242,568; as well as WO 98 / 37186; WO 98 / 53057; WO 00 / 27878; WO 01 / 88197; and GB 2,338,237.

[0082] Selection of target sites; methods for designing and constructing nucleases and fusion proteins (and the polynucleotides encoding same) are known to those of skill in the art and are described in detail in U.S. Patent Application Publication Nos. 20050064474 and 20060188987, which are incorporated herein by reference in their entireties.

[0083] The DNA domain can be engineered to bind to any optimal sequence at the targeted locus. In some embodiments, cells are provided with a sequence-specific endonuclease engineered to bind to a locus that is transcriptionally active in HSCs or HSC-lineage cells, such as microglial cells. The engineered DNA-binding domain can have novel binding specificity compared to naturally occurring DNA-binding domains. Engineering methods include, but are not limited to, rational design and various types of selection. Rational design, for example, can involve using a database containing triplex (or quadruple) nucleotide sequences and individual (e.g., zinc finger) amino acid sequences, where each triplex or quadruple nucleotide sequence is associated with one or more amino acid sequences of a DNA-binding domain that binds to a specific triplex or quadruple sequence. See, for example, U.S. Patent Nos. 6,453,242 and 6,534,261, which are incorporated herein by reference in their entireties. Rational design of TAL-effector domains can also be performed. See, for example, U.S. Patent Application Publication No. 2011 / 0301073.

[0084] In addition, as disclosed in these and other references, DNA binding domains (for example, multi-dactylic zinc finger proteins) can be linked together using any suitable linker sequence, including, for example, linkers of 5 or more amino acids.For example, for exemplary linker sequences of 6 or more amino acids in length, see U.S. Patent Nos. 6,479,626; 6,903,185; and 7,153,949.The proteins described herein can also comprise any combination of suitable linkers between the individual DNA binding domains of the protein.See also U.S. Patent Application Publication No. 2011 / 0301073.

[0085] In some embodiments, the sequence-specific endonuclease is a nucleic acid encoding an "engineered" or "programmable" rare-cutting endonuclease, such as a homing endonuclease as described, for example, in WO 2004067736, a zinc finger nuclease (ZFN) as described, for example, by Urnov F. et al. (Nature 435:646-651 (2005)), a TALE-nuclease as described, for example, by Mussolino et al. (Nucl. Acids Res. 39(21):9283-9293 (2011)), or a MegaTAL nuclease as described, for example, by Boissel et al. (Nucleic Acids Research 42 (4):2591-2601 (2013)).

[0086] In some embodiments, the sequence-specific endonuclease is transiently expressed in the cell, meaning that the reagent should not be integrated into the genome or persist for long periods of time, as is the case with RNA, more particularly mRNA, proteins, or mixed protein and nucleic acid complexes (e.g., ribonucleoproteins).

[0087] In some embodiments, the sequence-specific endonuclease is a nuclease that introduces a DNA double-strand break at the targeted locus, and subsequent repair is utilized to achieve various results. In some embodiments, a repair pathway based on homologous recombination can be used to copy information from an introduced DNA homologous template. Such homologous recombination repair (HDR) can facilitate the specific addition of an exogenous polynucleotide sequence (see, for example, U.S. Patent No. 8,921,332), such as a transgene as described herein, that can be expressed under the control of a promoter present on the exogenous polynucleotide sequence. In some embodiments, a transgene as described herein can be expressed under the control of an endogenous promoter simultaneously with gene disruption. In some embodiments where gene disruption is not desired, the transgene can be inserted into the stop codon of an endogenous gene and include a self-cleaving 2A peptide or an IRES sequence. In some embodiments, the transgene is expressed under the control of an endogenous promoter without gene disruption. In some embodiments, the non-homologous end joining (NHEJ) repair pathway can be utilized (see, e.g., U.S. Patent No. 9,458,439; He et al., Nucleic Acids Research, 44 e85, https: / / doi.org / 10.1093 / nar / gkw064).

[0088] The sequence-specific endonuclease can target genes that are active in specific cell types, such as certain types of immune cells, HSCs or their progeny, such as microglial cells, for the insertion of transgenes. In some embodiments, the sequence-specific endonuclease is not naturally occurring, i.e., the DNA binding domain and / or cleavage domain are engineered. For example, the DNA binding domain of a naturally occurring sequence-specific endonuclease can be modified to bind to a selected target site (e.g., a meganuclease engineered to bind to a site different from its cognate binding site or a CRISPR / Cas system that utilizes an engineered single guide RNA). In other embodiments, the sequence-specific endonuclease comprises a heterologous DNA binding domain and cleavage domain (e.g., zinc finger nuclease; TAL-effector nuclease; meganuclease DNA binding domain with a heterologous cleavage domain).

[0089] In some embodiments, the sequence-specific endonuclease is a meganuclease (homing endonuclease). Naturally occurring meganucleases recognize cleavage sites of 15 to 40 base pairs and are generally classified into four families: the LAGLIDADG family, the GIY-YIG family, the His-Cyst box family, and the HNH family. Exemplary homing endonucleases include I-SceI, I-CeuI, PI-PspI, PI-Sce, I-SceIV, I-CsmI, I-PanI, I-SceII, I-PpoI, I-SceIII, I-CreI, I-TevI, I-TevII, and I-TevIII. Their recognition sequences are known. See also U.S. Patent No. 5,420,032; U.S. Patent No. 6,833,252; Belfort et al. (1997) Nucleic Acids Res. 25:3379-3388; Dujon et al. (1989) Gene 82:115-118; Perler et al. (1994) Nucleic Acids Res. 22, 1125-1127; Jasin (1996) Trends Genet. 12:224-228; Gimble et al. (1996) J. Mol. Biol. 263:163-180; Argast et al. (1998) J. Mol. Biol. 280:345-353 and the New England Biolabs catalog.

[0090] In some embodiments, the sequence-specific endonuclease comprises an engineered (non-naturally occurring) homing endonuclease (meganuclease). In some embodiments, the DNA binding specificity of homing endonucleases and meganucleases can be engineered to bind to non-natural target sites. See, for example, Chevalier et al. (2002) Molec. Cell 10:895-905; Epinat et al. (2003) Nucleic Acids Res. 31:2952-2962; Ashworth et al. (2006) Nature 441:656-659; Paques et al. (2007) Current Gene Therapy 7:49-66; U.S. Patent Publication No. 20070117128. The DNA binding domain of homing endonucleases and meganucleases may be altered entirely in relation to the nuclease (ie, such that the nuclease contains a cognate cleavage domain) or may be fused to a heterologous cleavage domain.

[0091] In some embodiments, the DNA-binding domain comprises a naturally occurring or engineered (non-naturally occurring) TAL effector DNA-binding domain. See, for example, U.S. Patent Application Publication No. 2011 / 0301073, the entire contents of which are incorporated herein by reference. Plant pathogenic bacteria of the genus Xanthomonas are known to cause many diseases in important crops. The pathogenicity of Xanthomonas relies on a conserved type III secretion (T3S) system that injects more than 25 different effector proteins into plant cells. Among these, these injected proteins are transcription activator-like effectors (TALEs), which mimic plant transcription activators and manipulate the plant transcriptome (Kay et al. (2007) Science 318:648-651). These proteins contain a DNA-binding domain and a transcription activation domain. One of the best-characterized TALEs is AvrBs3 from Xanthomonas campestgris pv. Vesicatoria (see Bonas et al. (1989) Mol Gen Genet 218: 127-136 and WO 2010 / 079430). TALEs contain concentrated domains of tandem repeats, each containing approximately 34 amino acids that are important for the DNA-binding specificity of these proteins. In addition, they contain nuclear localization sequences and acidic transcriptional activation domains (for review, see Schornack S, et al. (2006) J Plant Physiol 163(3): 256-272). Additionally, in the plant pathogenic bacterium Ralstonia solancearum, two genes, designated brg11 and hpx17, which are homologous to the AvrBs3 family of Xanthomonas have been found in R. solanacearum biovar 1 lineage GMI1000 and biovar 4 lineage RS1000 (see Heuer et al. (2007) Appl and Envir Micro 73(13): 4379-4384).These genes are 98.9% identical in nucleotide sequence to each other, differing only by a 1,575-bp deletion in the repeat domain of hpx17, although both gene products share less than 40% sequence identity with Xanthomonas AvrBs3 family proteins.

[0092] In some embodiments, the DNA-binding domain that binds to a target site in a target locus is an engineered domain from a TAL effector similar to those derived from the plant pathogens Xanthomonas (see Boch et al. (2009) Science 326: 1509-1512 and Moscou and Bogdanove (2009) Science 326: 1501) and Ralstonia (see Heuer et al. (2007) Applied and Environmental Microbiology 73(13): 4379-4384); U.S. Patent Nos. 8,420,782 and 8,440,431 and U.S. Patent Application Publication No. 2011 / 0301073.

[0093] In some embodiments, the DNA-binding domain comprises a zinc finger protein. In some embodiments, the zinc finger protein is non-naturally occurring in that it is engineered to bind to an optimal target site. See, for example, Beerli et al. (2002) Nature Biotechnol. 20:135-141; Pabo et al. (2001) Ann. Rev. Biochem. 70:313-340; Isalan et al. (2001) Nature Biotechnol. 19:656-660; Segal et al. (2001) Curr. Opin. Biotechnol. 12:632-637; Choo et al. (2000) Curr. Opin. Struct. Biol. 10:411-416; U.S. Patent Nos. 6,453,242; 6,534,261; 6,599,692; 6,503,717; 6,689,558; 7,030,215; 6,794,136; 7,067,317; 7,262,054; 7,070,934; 7,361,635; 7,253,273; and U.S. Patent Application Publication Nos. 2005 / 0064474; 2007 / 0218528; 2005 / 0267061, all of which are incorporated by reference in their entireties.

[0094] Engineered zinc finger binding domains or TALE domains can have novel binding specificities compared to naturally occurring zinc finger proteins. Engineering methods include, but are not limited to, rational design and various types of selection. Rational design, for example, includes using a database containing triplet (or quadruple) nucleotide sequences and individual zinc finger amino acid sequences, where each triplet or quadruple nucleotide sequence is associated with one or more amino acid sequences of zinc fingers that bind to a specific triplet or quadruple sequence. For example, see U.S. Patent Nos. 6,453,242 and 6,534,261, the entire contents of which are incorporated herein by reference.

[0095] In some embodiments, DNA domains (e.g., multi-dactylic zinc finger proteins or TALE domains) may be linked together using any suitable linker sequence (e.g., including linkers of 5 or more amino acids in length). See also U.S. Patent Nos. 6,479,626; 6,903,185; and 7,153,949 for exemplary linker sequences of 6 or more amino acids in length. The DNA-binding proteins described herein may include any combination of suitable linkers between the individual zinc fingers of the protein. In addition, enhanced binding specificity for zinc finger binding domains is described, for example, in co-owned WO 02 / 077227.

[0096] Methods for designing and constructing DNA binding domains and fusion proteins (and the polynucleotides encoding same) are known to those of skill in the art and include, but are not limited to, U.S. Patent Nos. 6,140,0815; 789,538; 6,453,242; 6,534,261; 5,925,523; 6,007,988; 6,013,453; 6,200,759; WO 95 / 19431; WO 96 / 06166; WO 98 / 53057; WO 98 / 54311; WO 00 / 27878; WO 01 / 60970; WO 01 / 88197; WO 02 / 099084; WO 98 / 53058; WO 98 / 53059; 98 / 53060; WO 02 / 016536 and WO 03 / 016496 and U.S. Patent Application Publication No. 2011 / 0301073.

[0097] Any suitable cleavage domain can be functionally linked to DNA binding domain to form nuclease.For example, ZFP DNA binding domain is fused to nuclease domain to create ZFN (the functional entity that can recognize its intended nucleic acid target through its engineered (ZFP) DNA binding domain, and cut DNA near ZFP binding site by nuclease activity).For example, see Kim et al. (1996) Proc Nat'l Acad Sci USA 93(3):1156-1160.More recently, ZFN has been used for genome modification in various organisms. For example, see US Patent Application Publication No. 2003 / 0232410; 2005 / 0208489; 2005 / 0026157; 2005 / 0064474; 2006 / 0188987; 2006 / 0063231; and International Publication WO 07 / 014275.Also, TALE DNA binding domain is fused with nuclease domain to create TALEN.For example, see US Patent Application Publication No. 2011 / 0301073.

[0098] As mentioned above, the cleavage domain can be heterologous with the DNA binding domain, for example, zinc finger DNA binding domain and cleavage domain from nuclease, or TALEN DNA binding domain and cleavage domain, or meganuclease DNA binding domain and cleavage domain from different nuclease.Heterologous cleavage domain can be obtained from any endonuclease or exonuclease.Exemplary endonucleases from which the cleavage domain can be derived include, but are not limited to, restriction endonucleases and homing endonucleases.See, for example, 2002-2003 Catalogue, New England Biolabs, Beverly, Mass.; and Belfort et al. (1997) Nucleic Acids Res. 25:3379-3388. Additional enzymes that cleave DNA are known (e.g., S1 nuclease; mungbean nuclease; pancreatic DNase I; micrococcal nuclease; yeast HO endonuclease; see also Linn et al. (eds.) Nucleases, Cold Spring Harbor Laboratory Press, 1993). One or more of these enzymes (or functional fragments thereof) can be used as a source of cleavage domains and cleavage half-domains.

[0099] Similarly, the cleavage half-domain can be derived from any nuclease or portion thereof that requires dimerization for cleavage activity, as indicated above. Generally, when a fusion protein contains a cleavage half-domain, two fusion proteins are required for cleavage. Alternatively, a single protein containing two cleavage half-domains can be used. The two cleavage half-domains can be derived from the same endonuclease (or functional fragments thereof), or each cleavage half-domain can be derived from a different endonuclease (or functional fragments thereof). In addition, it is preferred that the target sites of the two fusion proteins be positioned relative to each other such that upon binding of the two fusion proteins to their respective target sites, the cleavage half-domains are positioned relative to each other in a spatial orientation that allows the cleavage half-domains to form a functional cleavage domain, e.g., by dimerization. Thus, in certain embodiments, the proximal ends of the target sites are separated by 5-8 nucleotides or 15-18 nucleotides. However, any integral number of nucleotides or nucleotide pairs can be interposed between the two target sites (e.g., 2-50 nucleotide pairs or more). Generally, the site of cleavage is between the target sites.

[0100] In some embodiments, the dimerized cleavage half-domains contain one inactive and one active cleavage domain, such that the targeted DNA is nicked on one strand rather than completely cleaved (see "nickases," U.S. Patent Application Publication No. 2010 / 0047805). In other embodiments, two pairs of such nickases are used to cleave targets nicked on both DNA strands.

[0101] Restriction endonucleases (restriction enzymes) exist in many species and can bind to DNA (at recognition sites) in a sequence-specific manner and cleave the DNA at or near the binding site. Certain restriction enzymes (e.g., type IIS) cleave DNA at sites distant from the recognition site and have separable binding and cleavage domains. For example, the type IIS enzyme Fok I catalyzes double-stranded cleavage of DNA, 9 nucleotides from its recognition site on one strand and 13 nucleotides from its recognition site on the other strand. See, e.g., U.S. Patent Nos. 5,356,802; 5,436,150 and 5,487,994; and Li et al. (1992) Proc. Natl. Acad. Sci. USA 89:4275-4279; Li et al. (1993) Proc. Natl. Acad. Sci. USA 90:2764-2768; Kim et al. (1994) Proc. Natl. Acad. Sci. USA 91:883-887; Kim et al. (1994) J. Biol. Chem. 269:31,978-31,982. In one embodiment, the fusion protein comprises a cleavage domain (or cleavage half-domain) derived from at least one Type IIS restriction enzyme and one or more zinc finger binding domains (engineered or not).

[0102] An exemplary type IIS restriction enzyme in which the cleavage domain is separable from the binding domain is Fok I. This particular enzyme is active as a dimer. Bitinaite et al. (1998) Proc. Natl. Acad. Sci. USA 95: 10,570-10,575. Therefore, for purposes of the present disclosure, the portion of the Fok I enzyme used in the disclosed fusion proteins is considered a cleavage half-domain. Thus, for targeted double-strand cleavage and / or targeted replacement of cellular sequences using zinc finger-Fok I fusions, two fusion proteins each containing a Fok I cleavage half-domain can be used to reconstitute a catalytically active cleavage domain. Alternatively, a single polypeptide molecule containing one DNA binding domain and two Fok I cleavage half-domains can be used.

[0103] A cleavage domain or cleavage half-domain can be any portion of a protein that retains cleavage activity or retains the ability to multimerize (e.g., dimerize) to form a functional cleavage domain.

[0104] Exemplary type IIS restriction enzymes are described in International Publication WO 07 / 014275, which is incorporated herein in its entirety. Additional restriction enzymes also contain separable binding and cleavage domains and are contemplated by the present disclosure. See, e.g., Roberts et al. (2003) Nucleic Acids Res. 31:418-420.

[0105] In some embodiments, the sequence-specific endonuclease is an RNA-guided endonuclease such as Cas9 or Cpf1 used in conjunction with an RNA guide, as taught by, inter alia, Doudna, J. et al. (Science 346 (6213): 1077) (2014)) and Zetsche, B. et al. (Cell 163(3): 759-771 (2015)), the teachings of which are incorporated herein by reference.

[0106] In some embodiments, cells are provided with a CRISPR (Clustered Regularly Interspaced Short Palindromic Repeats) / Cas (CRISPR-associated) nuclease system. CRISPR / Cas is a bacterial-based engineered nuclease system that can be used for genome manipulation. It is based in part on the adaptive immune response of many bacteria and archaea. When a virus or plasmid invades bacteria, a segment of the invader's DNA is converted into CRISPR RNA (crRNA) by the "immune" response. This crRNA then associates with another type of RNA, called tracrRNA, through a partially complementary region, and guides the Cas9 nuclease to a region in the target DNA that is homologous to the crRNA, called the "protospacer." Cas9 has been reported to cleave DNA to generate blunt ends at DSBs at sites specified by a 20-nucleotide guide sequence contained within the crRNA transcript. Originally, Cas9 requires both crRNA and tracrRNA for site-specific DNA recognition and cleavage. This system is currently being engineered to combine the crRNA and tracrRNA into a single molecule (a "single guide RNA"), and the crRNA equivalent of the single guide RNA can be engineered to direct the Cas9 nuclease to target any desired sequence (see Jinek et al. (2012) Science 337, p. 816-821, Jinek et al., (2013), eLife 2:e00471, and David Segal, (2013) eLife 2:e00563).

[0107] The CRISPR (clustered regularly interspaced short palindromic repeats) loci, which encode the RNA components of the system, and the protein-coding cas (CRISPR-associated) loci (Jansen et al., 2002. Mol. Microbiol. 43: 1565-1575; Makarova et al., 2002. Nucleic Acids Res. 30: 482-496; Makarova et al., 2006. Biol. Direct 1: 7; Haft et al., 2005. PLoS Comput. Biol. 1: e60) comprise the genetic arrangement of the CRISPR / Cas nuclease system. CRISPR loci in microbial hosts contain a combination of CRISPR-associated (Cas) genes as well as non-coding RNA elements that can program the specificity of CRISPR-mediated nucleic acid cleavage.

[0108] Type II CRISPR is one of the best-characterized systems and performs targeted DNA double-strand breaks in four sequential steps. First, two non-coding RNAs, the pre-crRNA and tracrRNA, are transcribed from the CRISPR locus. Second, tracrRNA hybridizes to the repeat region of the pre-crRNA and mediates processing of the pre-crRNA into mature crRNAs containing individual spacer sequences. Third, the mature crRNA:tracrRNA complex guides Cas9 to the target DNA through Watson-Crick base pairing between the spacer on the crRNA and the protospacer on the target DNA following the protospacer adjacent motif (PAM), an additional requirement for target recognition. Finally, Cas9 mediates cleavage of the target DNA, creating a double-strand break within the protospacer. The activity of the CRISPR / Cas system involves three steps: (i) insertion of foreign DNA sequences into the CRISPR array to prevent future attacks in a process called "adaptation," (ii) expression of associated proteins and expression and processing of the array, followed by (iii) RNA-mediated interference with the foreign nucleic acid. Thus, in bacterial cells, several so-called "Cas" proteins are involved in the natural function of the CRISPR / Cas system and play a role in functions such as insertion of foreign DNA.

[0109] In certain embodiments, a Cas protein may be a "functional derivative" of a naturally occurring Cas protein. A "functional derivative" of a native sequence polypeptide is a compound that shares qualitative biological properties with the native sequence polypeptide. "Functional derivatives" include, but are not limited to, native sequence fragments and derivatives of native sequence polypeptides and their fragments, provided that they share biological activity with the corresponding native sequence polypeptide. The biological activity contemplated herein is the ability of a functional derivative to hydrolyze a DNA substrate into fragments. The term "derivative" encompasses both amino acid sequence variants of a polypeptide, covalent modifications, and fusions thereof. Suitable derivatives of a Cas polypeptide or fragments thereof include, but are not limited to, mutants, fusions, and covalent modifications of a Cas protein or fragments thereof. Cas proteins, including not only Cas proteins or fragments thereof but also derivatives of Cas proteins or fragments thereof, may be obtained from cells, chemically synthesized, or obtained by a combination of these two procedures. The cell may be a cell that naturally produces a Cas protein, or a cell that naturally produces a Cas protein and has been engineered to produce an endogenous Cas protein at a higher expression level or to produce a Cas protein from an exogenously introduced nucleic acid (which nucleic acid encodes the same or a different Cas than the endogenous Cas). In some cases, the cell does not naturally produce a Cas protein but has been engineered to produce a Cas protein. Also included within the meaning of the present invention is the endonuclease Cpfl as taught by Zetsche, B. et al. (Cell 163(3): 759-771 (2015)).

[0110] The Cas9-associated CRISPR / Cas system comprises two RNA non-coding components: a tracrRNA and a pre-crRNA array containing nuclease guide sequences (spacers) separated by identical direct repeats (DRs). To achieve genome engineering using the CRISPR / Cas system, both of these RNA functions must be present (see Cong et al., (2013) Sciencexpress 1 / 10.1126 / science 1231143). In some embodiments, the tracrRNA and pre-crRNA are provided via separate expression constructs or as separate RNAs. In other embodiments, chimeric RNAs are constructed, in which an engineered mature crRNA (which confers target specificity) is fused to a tracrRNA (which provides interaction with Cas9) to create a chimeric cr-RNA-tracrRNA hybrid (also referred to as a single guide RNA).

[0111] In some embodiments, the sequence-specific endonuclease targets an intron of CX3CR1, preferably the first intron of CX3CR1 (SEQ ID NO:76), located between the first and second coding exons. The present invention also provides a specific TALE nuclease that preferentially targets an endogenous polynucleotide sequence of CX3CR1 similar to SEQ ID NOs:77-87. In some embodiments, the sequence-specific endonuclease is CRISPR-Cas or CRISPR-Cpf using a gRNA that targets an endogenous sequence similar to SEQ ID NOs:97-106.

[0112] In some embodiments, the sequence-specific endonuclease targets an intron of CD11B, preferably the first intron of CD11B. The present invention also provides specific TALE nucleases that preferentially target endogenous polynucleotide sequences of CD11B similar to SEQ ID NOs: 108-137. In some embodiments, the sequence-specific endonuclease is CRISPR-Cas or CRISPR-Cpf using gRNAs that target endogenous sequences similar to SEQ ID NOs: 138-147.

[0113] In some embodiments, the sequence-specific endonuclease targets an intron of S100A9, preferably the first intron of S100A9. The present invention also provides a specific TALE nuclease that preferentially targets an endogenous polynucleotide sequence of S100A9 similar to SEQ ID NOs: 149-178. In some embodiments, the sequence-specific reagent is CRISPR-Cas or CRISPR-Cpf using a gRNA that targets an endogenous sequence similar to SEQ ID NOs: 179-188.

[0114] Table 3: Target sequences defined for gene editing of cells of the present invention TIFF0007750865000007.tif203152TIFF0007750865000008.tif216152TIFF0007750865 000009.tif216152TIFF0007750865000010.tif223152TIFF0007750865000011.tif91152

[0115] Exogenous sequences The sequence-specific endonuclease used in accordance with the present invention, which specifically cleaves a sequence within a gene locus, is used to induce the integration of an exogenous sequence at the gene locus. "Exogenous sequence" refers to any nucleotide or nucleic acid sequence that was not originally present at the selected gene locus. In some embodiments, the exogenous sequence preferably comprises a sequence encoding a therapeutic polypeptide, such as those described herein, for treating a disease or condition. The endogenous sequence that is genetically modified by inserting a polynucleotide according to the methods of the present invention to express the encoded polypeptide is thereby broadly referred to as an exogenous coding sequence. In some embodiments, the targeted gene insertion comprises an exogenous sequence encoding a therapeutic polypeptide, such as those described herein.

[0116] In some embodiments, the sequence-specific endonuclease has cleavage activity for at least 5 hours before the DNA template containing the exogenous sequence is introduced into the cell. In some embodiments, the sequence-specific endonuclease has cleavage activity for at least about 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 hours before the DNA template containing the exogenous sequence is introduced into the cell. In some embodiments, the sequence-specific endonuclease has cleavage activity for preferably at least 18 hours, more preferably at least 20 hours before the DNA template containing the exogenous sequence is introduced into the cell.

[0117] In some embodiments, the DNA template comprising the exogenous sequence is introduced into the cells about 10 to about 30 hours after transfection of the nucleic acid encoding the sequence-specific endonuclease. In some embodiments, the DNA template comprising the exogenous sequence is introduced into the cells about 15 to about 25 hours after transfection of the nucleic acid encoding the sequence-specific endonuclease. In some embodiments, the DNA template comprising the exogenous sequence is introduced into the cells about 15 to about 20 hours after transfection of the nucleic acid encoding the sequence-specific endonuclease. In some embodiments, the DNA template is introduced about 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, or 30 hours after transfection of the nucleic acid encoding the sequence-specific endonuclease.

[0118] In some embodiments, the DNA template comprising the exogenous sequence is introduced into the cells about 5 to about 25 hours after transfection of the sequence-specific endonuclease polypeptide. In some embodiments, the DNA template comprising the exogenous sequence is introduced into the cells about 10 to about 20 hours after transfection of the sequence-specific endonuclease polypeptide. In some embodiments, the DNA template comprising the exogenous sequence is introduced into the cells about 10 to about 15 hours after transfection of the sequence-specific endonuclease polypeptide. In some embodiments, the DNA template is introduced about 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, or 25 hours after transfection of the sequence-specific endonuclease polypeptide.

[0119] In some embodiments, the DNA template containing the exogenous sequence is double-stranded (dsDNA). In some embodiments, the dsDNA is a PCR product. In some embodiments, the dsDNA has a length of more than 2 kb, preferably more than 2.5 kb, more preferably more than 3 kb, and even more preferably 2 to 10 kb.

[0120] In some embodiments, the DNA template is a single-stranded polynucleotide. In some embodiments, the DNA template is a short single-stranded oligodeoxynucleotide (ssODN). In some embodiments, the ssODN has homologous arms of 50 to 200 bp, preferably 80 to 150 bp, and more preferably 90 to 120 bp.

[0121] A sequence-specific endonuclease (e.g., CRISPR / Cas, ZFNS, or TALEN) creates a double-strand break at a locus (e.g., cellular chromatin). A DNA template containing an exogenous sequence, for example, a transgene encoding a therapeutic protein, and having homology with the nucleotide sequence flanking the region of the break, is introduced into a cell. The presence of a double-strand break has been shown to facilitate the integration of the DNA template sequence. The DNA template sequence can be physically integrated, or the DNA template can be used as a repair template for the break via homologous recombination, resulting in the introduction of all or part of a nucleotide sequence similar to the DNA template into cellular chromatin. Thus, the sequence in cellular chromatin at a genomic locus can be altered, and in certain embodiments, can be modified to include a sequence present in the DNA template.

[0122] In some embodiments, the exogenous sequence (including, for example, a transgene) is not identical to the sequence in the locus throughout its length. The DNA template can contain a non-homologous sequence flanked by two homologous regions to enable efficient HDR at the location of interest. Alternatively, the DNA template may not have a region homologous to the targeted location in DNA, and after cleavage, may be integrated into the target site by NHEJ-dependent end joining. The DNA template can contain several discontinuous regions homologous to cellular chromatin. For example, for targeted insertion of a sequence that is not normally present in the locus, the sequence can be present in the DNA template molecule and can be flanked by a region homologous to the sequence in the locus.

[0123] In some embodiments, the exogenous nucleotide sequence can contain a sequence that is homologous but not identical to a genomic sequence in the locus of interest, thereby facilitating homologous recombination and inserting the non-identical sequence into the locus of interest. In some embodiments, the portion of the DNA template that is homologous to the sequence in the locus of interest exhibits about 70-99% (or any integer value therebetween) sequence identity to the genomic sequence to be replaced. In other embodiments, the homology between the DNA template and the genomic sequence is greater than 99%, for example, when only a single nucleotide differs between the donor sequence and the genomic sequence of more than 100 consecutive base pairs. The non-homologous portion of the DNA template contains a sequence that is not present in the locus of interest, such that the new sequence, i.e., the sequence encoding the transgene, is integrated into the locus of interest. In some embodiments, the non-homologous sequence is generally flanked by 50-1,000 base pairs (or any integer value therebetween) or any number of base pairs greater than 1,000 that are homologous or identical to the sequence in the locus of interest. In some embodiments, the DNA template is not homologous to the original sequence and is inserted into the genome by non-homologous recombination mechanisms.

[0124] In some embodiments, the exogenous sequence encodes a polypeptide selected from a chimeric antigen receptor (CAR), a recombinant TCR, dnTGFβRII, sgp130, a mutated IL6Ra (mutIL6Ra), HLA-E, HLA-G, IL-2, IL-12, IL-15, IL-18, a FOXP3 inhibitor, a secreted inhibitor of tumor-associated macrophages (TAMs), e.g., a CCR2 / CCL2 neutralizing agent, an immunogenic peptide, or a secreted antibody, e.g., an anti-IDO1, anti-IL10, anti-PD1, anti-PDL1, anti-IL6, anti-GM-CSF, or anti-PGE2 antibody.

[0125] In some embodiments, the exogenous sequence comprises a sequence to correct a mutated endogenous gene present at the locus.

[0126] In some embodiments, the exogenous sequence is inserted into an endogenous sequence encoding one or more of the following genes: IL7R, CD45, IL2RG, JAK3, RAG1, RAG2, ARTEMIS, ADA, TRAC, CCR5, RFX5, RFXAP, RFXANK(B), CIITA, ZAP-70, CRAC, ORAI1, STIM1, POLA1, MAP3K14, GATA2, MCM4, IRF8, RTEL1, FCGR3A, Ncr1, TAP1, TAP2, RFX5, RFXAP, RFXANK(B), CIITA, ZAP-70, CRAC, ORAI1, and STIM1 (preferably in NK cells).

[0127] In some embodiments, the cell is a hematopoietic stem cell (HSC) or an HSC-derived lineage cell. In some embodiments, the exogenous sequence is inserted into a locus expressed in HSC-derived lineage cells (e.g., microglial cells), such as CCR5, TMEM119, CD11B, β2m, CX3CR1, or S100A9.

[0128] In some embodiments, the cells are immune cells and are modified with exogenous sequences to express or overexpress soluble polypeptides that interfere with inflammatory cytokine pathways, such as those involving interleukins IL1, IL6, and IL18, thereby reducing the risk of inducing cytokine release syndrome (CRS) during the course of cell therapy treatment. The soluble polypeptides are preferably human polypeptides, such as soluble GP130, IL18-BP, and soluble IL6Ra, rather than antibodies, to avoid immune rejection.

[0129] The present invention is also directed to a method for producing therapeutic immune cells expressing a transgene, such as a chimeric antigen receptor (CAR), that may not require a viral vector. Replacing the viral vector-based transformation method of the present invention with linear double-stranded or single-stranded nucleic acids is highly advantageous from both a cost and safety standpoint. The production of viral vectors, especially at GMP grade, is labor-intensive and expensive, while the use of such vectors requires limited space. Furthermore, viral integration generally occurs randomly, which can have deleterious consequences for the genome and potentially result in malignant cells.

[0130] The chimeric antigen receptor (CAR) or transgenic TCR that can be integrated into a specific locus in the cellular genome according to the present invention can be any of those previously reported in the art, in particular those that have shown efficacy against various malignant tumors, as reviewed, for example, by Steven Van Schandevyl & Tessa Kerre [Chimeric antigen receptor T-cell therapy: design improvements and therapeutic strategies in cancer treatment, Acta Clinica Belgica, 2020, 75:1, 26-32,].

[0131] A preferred CAR construct combines an extracellular binding domain for a component present on a target cell, such as an antibody-based specificity for a desired antigen (e.g., a tumor antigen), with an intracellular domain that activates a T cell receptor, to generate a chimeric protein that exhibits specific anti-target cell immune activity. Generally, a CAR consists of an extracellular single-chain antibody (scFv) comprising the light chain (VL) and heavy chain (VH) variable fragments of a target antigen-specific monoclonal antibody linked by a flexible linker, fused to the intracellular signaling domain of the zeta chain of the T cell antigen receptor complex. When expressed in immune effector cells, it has the ability to redirect antigen recognition based on the specificity of the monoclonal antibody. CARs can be single-chain or multi-chain, as described in WO2014039523.

[0132] More preferred CARs according to the present invention are those described in the Examples, more preferably those comprising an extracellular binding domain directed against one antigen selected from CD19, CD22, CD33, 5T4, ROR1, CD38, CD52, CD123, CS1, BCMA, Flt3, CD70, EGFRvIII, WT1, HSP-70 and CCL1. Such CARs preferably have a structure with a signaling domain comprising a fragment of 4-1BB (GenBank: AAA53133) or CD28 (NP_006130.1), for example as described in WO2016120216.

[0133] In some embodiments, an exogenous sequence, preferably an exogenous sequence encoding a chimeric antigen receptor (CAR), is integrated into a TCR locus or into a selected locus that is upregulated during immune cell activation. In some embodiments, the exogenous sequence encoding the CAR and the endogenous gene coding sequence may be co-transcribed, for example, by being separated by a cis-regulatory element (e.g., a 2A cis-acting hydrolase element) or an internal ribosome entry site (IRES) that is also introduced. For example, in some embodiments, the exogenous sequence encoding the CAR can be placed under the transcriptional control of the promoter of an endogenous gene activated by the tumor microenvironment, such as HIF1a, the transcription factor hypoxia-inducible factor, or aryl hydrocarbon receptor (AhR), which are gene sensors induced by hypoxia and xenobiotics, respectively, in the tumor microenvironment.

[0134] In some embodiments, the exogenous sequence encodes an NK inhibitor, preferably including a sequence encoding a non-polymorphic class I molecule or a viral evasin, such as UL18 [Uniprot #F5HFB4] and UL16 [also called ULBP1 - Uniprot #Q9BZM6], fragments or fusions thereof.

[0135] In some embodiments, the exogenous sequence encodes a polypeptide that exhibits at least 80% amino acid sequence identity to HLA-G or HLA-E or a functional variant thereof.

[0136] These exogenous sequences can be introduced into the genome by deleting or modifying (knock-out by knock-in) the endogenous coding sequences present at the locus, thereby combining gene inactivation with gene transfer.

[0137] In some embodiments, the exogenous sequence as described herein comprises a transgene encoding a therapeutic protein of a disease-associated gene. In some embodiments, the disease or condition to be treated and the transgene are shown in Table 4 below.

[0138] Table 4. Transgenes for diseases and their treatment TIFF0007750865000012.tif54140TIFF0007750865000013.tif222140TIFF0007750865000014.tif57140

[0139] In some embodiments, the exogenous sequence includes a sequence that encodes or complements: - HBB to treat sickle cell anemia (SCA); - CD40L to treat X-linked hyperimmunoglobulin M syndrome; - IDUA for treating mucopolysaccharidosis type I (Scheie, Hurler-Scheie, or Hurler syndrome), - IDS for treating mucopolysaccharidosis type II (Hunter), - ARSB for treating mucopolysaccharidosis type VI (Maroteaux-Lamy), - GUSB for treating mucopolysaccharidosis type VII (Sly), - ABCD1 for treating X-linked adrenoleukodystrophy, - GALC for treating globoid cell leukodystrophy (Krabbe), - ARSA for treating metachromatic leukodystrophy, - GBA for treating Gaucher disease, - FUCA1 for treating fucosidosis, - MAN2B1 for treating alpha-mannosidosis, - AGA for treating aspartylglucosaminuria, - ASAH1 for treating Farber disease, - HEXA for treating Tay-Sachs disease, - GAA for treating Pompe disease, - SMPD1 for treating Niemann-Pick disease, - DMD to treat Duchenne muscular dystrophy - LIPA for treating Wolman syndrome, - CDKL5 for treating a disease associated with a CDKL5 deficiency, or - ADCY3, BDNF, KSR2, LEP for treating severe obesity.

[0140] In some embodiments, the DNA template comprises a coding sequence of a transgene as described herein. In some embodiments, the DNA template comprises a coding region of a gene selected from the group consisting of IDUA, IDS, ARSB, GUSB, ABCD1, GALC, ARSA, PSAP, GBA, FUCA1, MAN2B1, AGA, ASAH1, HEXA, GAA, SMPD1, LIPA, CDKL5, HBB, CD40L, ADCY3, BDNF, KSR2, and LEP.

[0141] In some embodiments, the DNA template comprises a nucleotide sequence selected from the group consisting of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 206, 208, 210, 212, 214, 216, and variants thereof, as described herein.

[0142] In some embodiments, the DNA template encodes a therapeutic protein comprising an amino acid sequence selected from any one of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, 217, and variants thereof, as described herein.

[0143] In some embodiments, the nucleotide sequence of IDUA comprises SEQ ID NO:1 and the amino acid sequence comprises SEQ ID NO:2.

[0144] In some embodiments, the nucleotide sequence of the IDS comprises SEQ ID NO:3 and the amino acid sequence comprises SEQ ID NO:4.

[0145] In some embodiments, the nucleotide sequence of ARSB comprises SEQ ID NO:5 and the amino acid sequence comprises SEQ ID NO:6.

[0146] In some embodiments, the nucleotide sequence of the GUSB comprises SEQ ID NO:7 and the amino acid sequence comprises SEQ ID NO:8.

[0147] In some embodiments, the nucleotide sequence of ABCD1 comprises SEQ ID NO:9 and the amino acid sequence comprises SEQ ID NO:10.

[0148] In some embodiments, the nucleotide sequence of GALC comprises SEQ ID NO:11 and the amino acid sequence comprises SEQ ID NO:12.

[0149] In some embodiments, the nucleotide sequence of ARSA comprises SEQ ID NO:13 and the amino acid sequence comprises SEQ ID NO:14.

[0150] In some embodiments, the nucleotide sequence of the PSAP comprises SEQ ID NO:15 and the amino acid sequence comprises SEQ ID NO:16.

[0151] In some embodiments, the nucleotide sequence of GBA comprises SEQ ID NO:17 and the amino acid sequence comprises SEQ ID NO:18.

[0152] In some embodiments, the nucleotide sequence of FUCA1 comprises SEQ ID NO:19 and the amino acid sequence comprises SEQ ID NO:20.

[0153] In some embodiments, the nucleotide sequence of MAN2B1 comprises SEQ ID NO:21 and the amino acid sequence comprises SEQ ID NO:22.

[0154] In some embodiments, the nucleotide sequence of AGA comprises SEQ ID NO:23 and the amino acid sequence comprises SEQ ID NO:24.

[0155] In some embodiments, the nucleotide sequence of ASAH1 comprises SEQ ID NO:25 and the amino acid sequence comprises SEQ ID NO:26.

[0156] In some embodiments, the nucleotide sequence of HEXA comprises SEQ ID NO:27 and the amino acid sequence comprises SEQ ID NO:28.

[0157] In some embodiments, the nucleotide sequence of GAA comprises SEQ ID NO:29 and the amino acid sequence comprises SEQ ID NO:30.

[0158] In some embodiments, the nucleotide sequence of SMPD1 comprises SEQ ID NO:31 and the amino acid sequence comprises SEQ ID NO:32.

[0159] In some embodiments, the nucleotide sequence of LIPA comprises SEQ ID NO:33 and the amino acid sequence comprises SEQ ID NO:34.

[0160] In some embodiments, the nucleotide sequence of CDKL5 comprises SEQ ID NO:35 and the amino acid sequence comprises SEQ ID NO:36.

[0161] In some embodiments, the nucleotide sequence of HBB comprises SEQ ID NO:206 and the amino acid sequence comprises SEQ ID NO:207.

[0162] In some embodiments, the nucleotide sequence of CD40L comprises SEQ ID NO:208 and the amino acid sequence comprises SEQ ID NO:209.

[0163] In some embodiments, the nucleotide sequence of ADCY3 comprises SEQ ID NO:210 and the amino acid sequence comprises SEQ ID NO:211.

[0164] In some embodiments, the nucleotide sequence of BDNF comprises SEQ ID NO:212 and the amino acid sequence comprises SEQ ID NO:213.

[0165] In some embodiments, the nucleotide sequence of KSR2 comprises SEQ ID NO:214 and the amino acid sequence comprises SEQ ID NO:215.

[0166] In some embodiments, the nucleotide sequence of LEP comprises SEQ ID NO:216 and the amino acid sequence comprises SEQ ID NO:217.

[0167] In some embodiments, the exogenous sequence comprises one or more copies of a nucleotide sequence selected from any one of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 206, 208, 210, 212, 214, and 216.

[0168] In some embodiments, the exogenous sequence comprises one or more copies of a nucleotide sequence encoding an amino acid sequence selected from any one of SEQ ID NOs:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, and 217.

[0169] In some embodiments, the exogenous sequence comprises a nucleotide sequence encoding a therapeutic protein that is a variant of any one of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, and 217.

[0170] A particular nucleotide sequence encoding a therapeutic protein may be identical over its entire length to the coding sequence in SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 206, 208, 210, 212, 214 and 216. Alternatively, a particular nucleotide sequence encoding a therapeutic protein may be an alternative form of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 206, 208, 210, 212, 214, and 216 due to degeneracy or differences in codon usage in the genetic code that encodes the polypeptides of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, and 217. In some embodiments, the exogenous sequence comprises a nucleotide sequence that is highly identical, at least 90% identical, to a nucleotide sequence encoding a therapeutic protein, or that is at least 90% identical to the coding nucleotide sequence set forth in SEQ ID NO:1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 206, 208, 210, 212, 214, or 216. In some embodiments, the exogenous sequence comprises a nucleotide sequence that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to the nucleotide sequence set forth in SEQ ID NO:1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 206, 208, 210, 212, 214, or 216.

[0171] "Identity" refers to the sequence identity between two nucleic acid molecules or polypeptides. Identity can be determined by comparing positions in each sequence that can be aligned for comparison. If a position in the compared sequences is occupied by the same base, then the molecules are identical at that position. The degree of similarity or identity between nucleic acid or amino acid sequences is a function of the number of identical or matching nucleotides at positions shared by the nucleic acid sequences. To calculate the identity between two sequences, various alignment algorithms and / or programs may be used, including FASTA or BLAST, available as part of the GCG sequence analysis package (University of Wisconsin, Madison, Wis.), and can be used, for example, with default settings. For example, polypeptides having at least 70%, 85%, 90%, 95%, 98%, or 99% identity to the specific polypeptides described herein and preferably exhibiting substantially the same function, as well as polynucleotides encoding such polypeptides, are contemplated.

[0172] When an exogenous sequence comprising a polynucleotide encoding a Therapeutic protein of the invention is used for the recombinant production of the Therapeutic protein, the polynucleotide may contain the coding sequence for the full-length polypeptide or a fragment thereof alone; or the coding sequence for the full-length polypeptide or a fragment in reading frame with other coding sequences (e.g., those encoding leader or secretory sequences, pre- or pro- or prepro-protein sequences, or other fusion peptide portions). The polynucleotide may also contain non-coding 5' and 3' sequences, such as transcribed but untranslated sequences, splicing and polyadenylation signals, ribosome binding sites, and sequences that stabilize mRNA.

[0173] In some embodiments, the therapeutic protein can further comprise a secretory signal peptide that enables its secretion by the gene-edited cells of the invention. Some examples of such signal peptides are listed in Table 5 below.

[0174] Table 5. Examples of useful signal peptides TIFF0007750865000015.tif77145

[0175] In some embodiments, the therapeutic protein can further comprise a peptide that enables cellular uptake, such as a cell membrane penetrating peptide (CPP) and an apolipoprotein. Examples of cell membrane penetrating peptides and apolipoproteins are listed in Table 6 below.

[0176] Table 6. Examples of useful CPPs and apolipoproteins TIFF0007750865000016.tif158153

[0177] In some embodiments, the exogenous sequence comprises a polynucleotide having a nucleotide sequence that is at least 90% identical, more preferably at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to a nucleotide sequence encoding a therapeutic protein having an amino acid sequence in SEQ ID NO:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217.

[0178] Conventional means utilizing known computer programs, such as the BestFit program (Wisconsin Sequence Analysis Package, Version 10 for Unix, Genetics Computer Group. University Research Park, 575 Science Drive, Madison, Wis. 53711), may be used to determine whether a particular nucleic acid molecule is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to any one of the nucleotide sequences set forth in SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 206, 208, 210, 212, 214 or 216.

[0179] In some embodiments, the exogenous sequence comprises a polynucleotide encoding a Therapeutic protein having the amino acid sequence of a Therapeutic protein of SEQ ID NO:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217, wherein a number of 1, 1-2, 1-3, 1-5, 5-10, or 10-20 amino acid residues have been substituted, deleted, or added in any combination.

[0180] In some embodiments, the exogenous sequence comprises a polynucleotide that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical over its entire length to a polynucleotide encoding a therapeutic protein having the amino acid sequence set forth in SEQ ID NO:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215 or 217.

[0181] In some embodiments, the therapeutic protein expressed by the exogenous sequence is identical to the wild-type amino acid sequence of the protein, e.g., any of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217.

[0182] In some embodiments, the therapeutic protein expressed by the exogenous sequence is a functional fragment or variant of any of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217.

[0183] In some embodiments, therapeutic proteins are those having activity and at least 90% identity to the polypeptides of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217, or a related portion thereof, more preferably SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217, or a related portion thereof. and 217, and even more preferably at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% identity to the polypeptide of SEQ ID NO:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217.

[0184] Therapeutic proteins may be part of a larger protein, such as a fusion protein. Often, it is advantageous to include additional amino acid sequences, including secretory or leader sequences, pro-sequences, or other sequences that may aid stability.

[0185] In some embodiments, the exogenous sequence encodes a biologically active fragment of any of SEQ ID NOs:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217. A fragment is a polypeptide having an amino acid sequence that is entirely the same as part, but not all, of the amino acid sequence of one of the aforementioned Therapeutic proteins. As with full-length Therapeutic proteins, fragments may be "free-standing" or may be comprised within a larger polypeptide of which they form a portion or region, most preferably as a single contiguous region. In some embodiments, the fragment can consist of about 10 consecutive amino acids set forth in SEQ ID NO:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215 or 217.

[0186] In some embodiments, fragments include truncated polypeptides that have the amino acid sequence of a therapeutic protein, except for, for example, the deletion of a contiguous series of residues including the amino terminus, a contiguous series of residues including the carboxyl terminus, or two contiguous series of residues, one including the amino terminus and the other including the carboxyl terminus. Also preferred are fragments characterized by structural or functional attributes, such as fragments containing alpha-helix and alpha-helix-forming regions, beta-sheet and beta-sheet-forming regions, turn and turn-forming regions, coil and coil-forming regions, hydrophilic regions, hydrophobic regions, alpha-amphipathic regions, beta-amphipathic regions, flexible regions, surface-forming regions, substrate-binding regions, and high antigenic index regions. Functional fragments are those that mediate the protein activity of the wild-type protein, including those with similar or improved activity.

[0187] In some embodiments, the fragment may lack 1 to 20 amino acids (i.e., 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 amino acids) from the N-terminus and / or C-terminus of any of SEQ ID NOs:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, 217, 219, or 221.

[0188] In some embodiments, the exogenous sequence encodes a polypeptide having an amino acid sequence at least 90% identical to the amino acid sequence of SEQ ID NO:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217, or a functional fragment thereof having at least 90% identity to the corresponding fragment of SEQ ID NO:2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 207, 209, 211, 213, 215, or 217, all of which retain the biological activity of the Therapeutic protein. This group includes variants of the defined sequences and fragments. In some embodiments, variants vary from the reference sequence by conservative amino acid substitutions, i.e., replacing one residue with another with similar properties. Typical substitutions are between Ala, Val, Leu, and Ile; between Ser and Thr; between acidic residues Asp and Glu; between Asn and Gln; and between basic residues Lys and Arg, or between aromatic residues Phe and Tyr. In some embodiments, the exogenous sequence encodes a polypeptide variant in which 1 to 20 amino acids are substituted, deleted, or added in any combination.

[0189] In some embodiments, the exogenous sequence is inserted into a genomic locus in the cell by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ.

[0190] In some aspects, the exogenous sequence is inserted into the locus by homologous recombination.

[0191] "Recombination" refers to the process of exchanging genetic information between two polynucleotides. For purposes of this disclosure, "homologous recombination (HR)" refers to a specialized form of such exchange, occurring, for example, via the homology-directed repair mechanism during repair of double-strand breaks in cells. This process requires nucleotide sequence homology and generally uses a "donor" molecule (also referred to as a "polynucleotide template") for integration into an endogenous locus (the "target" sequence) via homologous recombination or NHEJ repair. This leads to the transfer of genetic information from the donor to the target. Without wishing to be bound by any particular theory, such transfer may involve mismatch correction of heteroduplex DNA formed between the cleaved target and the donor, and / or "synthesis-dependent strand annealing," in which the donor is used to resynthesize the genetic information that will become part of the target, and / or related processes. Such specialized HR often results in alteration of the sequence of the target molecule such that some or all of the sequence of the donor polynucleotide is incorporated into the target polynucleotide.

[0192] cell In some aspects, the present invention provides genetically modified cells obtainable according to any one of the method aspects described herein.

[0193] In some embodiments, the cells are mammalian cells, preferably primate cells, more preferably human cells. In some embodiments, the cells are primary cells. In some embodiments, the cells are immune cells, preferably T cells or NK cells. In some embodiments, the cells are primary T cells, more preferably primary T cells derived from a patient, such as tumor-infiltrating lymphocytes (TILs), or primary T cells derived from a donor.

[0194] "Immune cells" typically refer to cells of hematopoietic origin, such as CD3- or CD4-positive cells, that are functionally involved in the initiation and / or execution of innate and / or adaptive immune responses. Immune cells according to the present invention can be dendritic cells, killer dendritic cells, mast cells, NK cells, B cells, or T cells selected from the group consisting of inflammatory T lymphocytes, cytotoxic T lymphocytes, regulatory T lymphocytes, or helper T lymphocytes. Cells can be obtained from numerous sources, including, but not limited to, peripheral blood mononuclear cells, bone marrow, lymph node tissue, umbilical cord blood, thymus tissue, tissue from a site of infection, ascites, pleural effusion, spleen tissue, and tumors (e.g., in the case of tumor-infiltrating lymphocytes). In some embodiments, the immune cells can be derived from a healthy donor, a patient diagnosed with cancer, or a patient diagnosed with an infectious disease. In another embodiment, the cells are part of a mixed population of immune cells displaying distinct phenotypic characteristics, such as CD4-, CD8-, and CD56-positive cells.

[0195] By "primary cell" or "primary cells" is intended cells taken directly from viable tissue (e.g., biopsy material) and established for in vitro growth for a limited period of time, meaning that they can only undergo a limited number of population doublings. Primary cells are in contrast to persistently tumorigenic or artificially immortalized cell lines. Non-limiting examples of such cell lines are CHO-K1 cells; HEK293 cells; Caco2 cells; U2-OS cells; NIH 3T3 cells; NSO cells; SP2 cells; CHO-S cells; DG44 cells; K-562 cells, U-937 cells; MRC5 cells; IMR90 cells; Jurkat cells; HepG2 cells; HeLa cells; HT-1080 cells; HCT-116 cells; Hu-h7 cells; Huvec cells; and Molt 4 cells. Primary cells are commonly used in cell therapy because they are considered to be more functional and less tumorigenic.

[0196] Generally, primary immune cells are provided from a donor or patient via various methods known in the art, such as by leukapheresis techniques as outlined by Schwartz J. et al. (Guidelines on the use of therapeutic apheresis in clinical practice—evidence-based approach from the Writing Committee of the American Society for Apheresis: the sixth special issue (2013) J Clin Apher. 28(3):145-284).

[0197] Primary immune cells according to the present invention can also be differentiated from stem cells such as umbilical cord blood stem cells, progenitor cells, bone marrow stem cells, hematopoietic stem cells (HSC) and induced pluripotent stem cells (iPS).

[0198] In some embodiments, the cells are hematopoietic stem cells. As used herein, the term "hematopoietic stem cells" (or "HSCs") refers to immature blood cells that have the ability to self-renew and differentiate into mature blood cells, including various lineages, including, but not limited to, granulocytes (e.g., promyelocytes, neutrophils, eosinophils, basophils), erythrocytes (e.g., reticulocytes, erythrocytes), thrombocytes (e.g., megakaryoblasts, platelet-producing megakaryocytes, platelets), monocytes (e.g., monocytes, macrophages), dendritic cells, microglia, osteoclasts, and lymphocytes (e.g., NK cells, B cells, and T cells). It is known in the art that such cells may or may not contain CD34+ cells. CD34+ cells are immature cells that express the CD34 cell surface marker. In humans, CD34+ cells are thought to comprise a subpopulation of cells with the properties of stem cells defined above, while in mice, HSCs are CD34-. In addition, HSCs also refer to HSCs with long-term repopulating potential (LT-HSCs) and HSCs with short-term repopulating potential (ST-HSCs). LT-HSCs and ST-HSCs are distinguished based on functional potential and cell surface marker expression. For example, in some embodiments, human HSCs are CD34+, CD38-, CD45RA-, CD90+, CD49F+, and lin- (negative for mature lineage markers including CD2, CD3, CD4, CD7, CD8, CD10, CD11B, CD19, CD20, CD56, and CD235A). In mice, bone marrow LT-HSCs are CD34-, SCA-1+, C-kit+, CD135-, Slamfl / CD150+, CD48-, and lin- (negative for mature lineage markers, including Ter119, CD11b, Gr1, CD3, CD4, CD8, B220, and IL7ra), whereas ST-HSCs are CD34+, SCA-1+, C-kit+, CD135-, Slamfl / CD150+, and lin- (negative for mature lineage markers, including Ter119, CD11b, Gr1, CD3, CD4, CD8, B220, and IL7ra). In addition, ST-HSCs are less quiescent (i.e., more active) and more proliferative than LT-HSCs under homeostatic conditions.However, LT-HSCs have greater self-renewal capacity (i.e., they survive throughout adulthood and can be serially transplanted through successive recipients), whereas ST-HSCs have limited self-renewal capacity (i.e., they survive for only a limited period of time and do not have serial transplantation capacity). Either of these HSCs can be used in any of the methods described herein. In some embodiments, ST-HSCs are useful because they are highly proliferative and therefore can generate differentiated progeny more quickly.

[0199] In some embodiments, the hematopoietic stem cells used in the genetic modification herein are isolated from bone marrow. In some embodiments, HSCs can be collected from the iliac crest of the pelvis using a needle or syringe.

[0200] In some embodiments, hematopoietic stem cells can be derived from human umbilical cord blood or mobilized peripheral blood. Hematopoietic stem cells obtained from human peripheral blood can be mobilized by one of a variety of strategies. Exemplary agents that can be used to induce mobilization of hematopoietic stem cells from bone marrow to peripheral blood include chemokine (C-X-C motif) receptor 4 (CXCR4) antagonists, such as AMD3100 (also known as plerixafor and MOZOBIL (Genzyme, Boston, Mass.)) and granulocyte colony-stimulating factor (GCSF), the combination of which has been shown to rapidly mobilize CD34+ cells in clinical trials. In addition, chemokine (C-X-C motif) ligand 2 (CXCL2, also known as GROβ) is representative of another agent capable of inducing hematopoietic stem cell mobilization from bone marrow to peripheral blood. Other agents capable of inducing hematopoietic stem cell mobilization for use with the compositions and methods of the present invention may also be used in combination with each other. For example, a CXCR4 antagonist (e.g., AMD3100), CXCL2, and / or GCSF may be administered sequentially or simultaneously to a subject in a single mixture to induce hematopoietic stem cell mobilization from bone marrow to peripheral blood. The use of these agents as inducers of hematopoietic stem cell mobilization is described, for example, in Pelus, Current Opinion in Hematology 15:285 (2008), the disclosure of which is incorporated herein by reference.

[0201] In some embodiments, HSCs are harvested from circulating peripheral blood during injection of a blood donor with an agent that mobilizes HSCs from the bone marrow. In some embodiments, the agent that mobilizes HSCs from the bone marrow to the peripheral blood is a cytokine, such as granulocyte colony-stimulating factor (G-CSF). In some embodiments, the population of HSCs isolated from the peripheral blood is enriched for CD34+ cells and comprises at least 50%, at least 70%, or at least 90% CD34+ cells.

[0202] In some embodiments, for mobilized peripheral blood (MPB) leukapheresis, CD34+ cells can be processed and enriched, typically using immunomagnetic beads such as CliniMACS. Purified CD34+ cells are cultured in a culture bag at 1x10 in serum-free medium in the presence of preferably 300ng / ml cell culture-grade stem cell factor (SCF) (Amgen Inc., Thousand Oaks, CA, USA), preferably 300ng / ml FMS-like tyrosine kinase 3 ligand (FLT3L), preferably around 100ng / ml thrombopoietin (TPO), and preferably more than 60ng / ml additional interleukin IL-3 (all from Cell Genix Technologies), preferably 12-24 hours before transfer to electroporation buffer containing sequence-specific reagents (e.g., mRNA). 6 After electroporation, the cells are returned to culture medium, then resuspended in saline and transferred to an injection syringe.

[0203] The method for enriching or depleting a specific cell population in a cell mixture is well known in the art.For example, cell population can be enriched or depleted by density separation, rosette-forming tetrameric antibody complex mediated enrichment / depletion, magnetic activated cell sorting (MACS), multi-parameter fluorescence-based molecular phenotyping, such as fluorescence activated cell sorting (FACS), or any combination thereof.Together, these methods for enriching or depleting a cell population can generally be referred to herein as "sorting" a cell population or contacting cells "under conditions" to form or generate enriched (+) or depleted (-) cell populations.

[0204] Once the mobilized cells are collected, the removed hematopoietic stem cells can be genetically modified as described herein and then infused into a patient in need thereof (which may be the donor or another subject, such as a subject that is at least partially HLA-matched to the donor) for the treatment of a disease as described herein.

[0205] In some embodiments, these cells form a population of cells that may originate from a single donor or patient, which can be expanded in a closed culture recipient to adhere to the highest manufacturing practice requirements and frozen prior to infusion into the patient, thereby providing an "off the shelf" or "ready to use" therapeutic composition.

[0206] In some embodiments, the HSCs are CD34+. In some embodiments, the HSCs can be further described as CD133+, CD90+, CD38-, CD45RA-, Lin-, or any combination thereof.

[0207] In some embodiments, the cells are induced pluripotent stem cells (iPS). In some embodiments, HSCs capable of differentiating into cells such as microglial cells are derived from pluripotent stem cells, e.g., induced pluripotent stem cells (iPS). See, e.g., Abud et al., Neuron 94, 278-293 (2017). In some embodiments, iPS cells are genetically modified as described herein and then differentiated into HSC cells. In some embodiments, iPS cells are differentiated into HSCs, and the HSCs are then genetically modified as described herein. In further embodiments, cells can be genetically modified as described herein before reprogramming into iPS cells and HSCs, e.g., as described in International Patent Application No. PCT / EP2018 / 083180. In some embodiments, hematopoietic stem cells can be isolated from the patient to be treated or from a matched donor.

[0208] In some embodiments, the hematopoietic stem cells are obtained from induced pluripotent stem (iPS) cells derived from cells from the patient to be treated or from a matched donor.

[0209] In some embodiments, HSCs can be expanded ex vivo before genetic modification and / or infusion of these cells into patients. See, e.g., U.S. Patent Nos. 9,580,426; 9,956,249; 9,527,828; 9,428,748; 9,394,520; 9,328,085; 9,226,942; 9,115,341; and 8,927,281.

[0210] In some embodiments, the cells are isolated from a donor, and the donor is an HLA-matched sibling donor, an HLA-matched unrelated donor, a partially matched unrelated donor, a haploidentical related donor, an autologous donor, an HLA-mismatched donor, a pool of donors, or any combination thereof. In some embodiments, the population of therapeutic cells is allogeneic. In some embodiments, the population of therapeutic cells is autologous. In some embodiments, the population of therapeutic cells is haploidentical.

[0211] As used herein, a "donor" is a human or animal from which one or more cells are isolated prior to modification and administration of the cells or their progeny to a recipient. The one or more cells can be, for example, a population of hematopoietic stem cells that are modified, expanded, enriched, or maintained according to the methods of the invention prior to administration of the cells or their progeny to a recipient.

[0212] As used herein, a "recipient" is a patient receiving a transplant, e.g., a graft containing a population of modified hematopoietic stem cells or a population of differentiated cells. The transplanted cells administered to the recipient can be, e.g., autologous, syngeneic, or allogeneic cells.

[0213] "Expansion," in the context of cells, refers to an increase in the number of one or more characteristic cell types from an initial cell population of cells, which may or may not be identical. The initial cells used for expansion may not be the same as the cells produced from the expansion.

[0214] A "cell population" refers to eukaryotic mammalian, preferably human, cells isolated from a biological source, such as a blood product or tissue, and derived from more than one cell.

[0215] "Enriched," when used in reference to a cell population, refers to a cell population that has been selected based on the presence of one or more markers, for example, CD34+.

[0216] The term "CD34+ cells" refers to cells that express the CD34 marker on their surface. CD34+ cells can be detected and enumerated, for example, using flow cytometry and a fluorescently labeled anti-CD34 antibody.

[0217] "Enriched for CD34+ cells" means that the cell population has been selected based on the presence of the CD34 marker. Thus, the percentage of CD34+ cells in the cell population after the selection method is higher than the percentage of CD34+ cells in the initial cell population before the selection step based on the CD34 marker. For example, CD34+ cells can account for at least 50%, 60%, 70%, 80%, or at least 90% of the cells in the cell population enriched for CD34+ cells.

[0218] therapeutic method In another aspect, the invention provides a method of treating a disease or condition in a subject, comprising administering to the subject an effective amount of a pharmaceutical composition comprising cells modified according to the methods herein.

[0219] As used herein, the terms "treat," "treatment," "treating," and the like refer to obtaining a desired pharmacological and / or physiological effect. The effect may be prophylactic, in terms of completely or partially preventing a disease or its symptoms, and / or therapeutic, in terms of partially or completely curing the disease and / or side effects resulting from the disease. "Treatment," as used herein, encompasses any treatment of disease in mammals, particularly humans, and includes (a) preventing the disease from occurring in a subject who may be susceptible to the disease but has not yet been diagnosed as having the disease; (b) inhibiting the disease, i.e., halting its development; and (c) alleviating the disease, e.g., causing regression of the disease (e.g., to completely or partially eliminate the symptoms of the disease).

[0220] The term "subject" or "patient," as used herein, includes all members of the animal kingdom, including non-human primates and humans.

[0221] As used herein, the terms "administering" or "providing" refer to placing a compound, cell, population of cells, or composition as disclosed herein into a subject or into cells by a method or route that results in at least partial delivery of the agent to the desired site. Pharmaceutical compositions containing the compounds or cells disclosed herein can be administered or provided by any suitable route that results in an effective treatment or effect on the cells in the subject.

[0222] An "effective amount" or "therapeutically effective amount" refers to the amount of a composition described herein that, when administered to a subject (e.g., a human), is sufficient to treat a disease. The amount of a composition that constitutes a "therapeutically effective amount" varies depending on the cell preparation, the condition and its severity, the mode of administration, and the age of the subject to be treated, but can be routinely determined by one of ordinary skill in the art in light of their own knowledge and this disclosure. When referring to an individual active ingredient or composition administered alone, the therapeutically effective dose refers to that ingredient or composition alone. When referring to a combination, the therapeutically effective dose refers to the combined amount of active ingredients, compositions, or both that results in a therapeutic effect, whether administered sequentially, concurrently, or simultaneously.

[0223] As used herein, the term "pharmaceutical composition" refers to an active agent combined with a pharmaceutically acceptable carrier, e.g., a carrier commonly used in the pharmaceutical industry. The phrase "pharmaceutically acceptable" is used herein to refer to those compounds, materials, compositions and / or dosage forms that, within the scope of sound medical judgment, are suitable for use in contact with the tissues of human beings and animals without undue toxicity, irritation, allergic response or other problem or complication, commensurate with a reasonable benefit / risk ratio.

[0224] The present invention is directed to the production of genetically engineered therapeutic cells, particularly cells derived from hematopoietic cell lineages such as T cells, stem cells, or differentiated cells, for treating disease through gene repair, cross-correction, and / or expression of therapeutic molecules. The therapeutic effect is generally achieved through the expression by the cells of a complementing or correcting allele resulting from targeted insertion of an exogenous DNA template by the methods described herein.

[0225] In some embodiments, the present invention is useful for treating diseases characterized by systemic erythrocyte dysfunction, such as those resulting from mutations to HBB, particularly sickle cell anemia and beta thalassemia.

[0226] In some embodiments, the present invention is useful for treating autoimmune diseases characterized by systemic T cell dysfunction, such as those caused by mutations in STAT3.

[0227] In some embodiments, transgenes are incorporated into immune cells to restore their function or redirect their immune properties to diseased cells. The engineered T cells or NK cells of the present invention can express CARs or recombinant TCRs that target various tumor types, particularly malignant conditions that express the following markers: CD19; particularly acute lymphoblastic leukemia and non-Hodgkin's lymphoma, CD22; particularly acute lymphoblastic leukemia, CD123 and CD33; particularly acute myeloid lymphoma, CS1 or BCMA; particularly multiple myeloma, mesothelin and ROR1; carcinomas such as breast tumors, CD70; glioma, 5T4; ovarian cancer, and also CD7; leukemia. The present invention can also be used to produce engineered tumor-infiltrating lymphocytes (TILs) that are active against tumors to improve efficacy.

[0228] In some embodiments, the patient has a monogenic disease or condition. In some embodiments, the patient has a defect in expression of an endogenous gene homologous to the transgene. In some embodiments, the patient has a lysosomal storage disease. In some embodiments, the disease or condition is selected from mucopolysaccharidosis type I (Scheie, Hurler-Scheie, or Hurler syndrome), mucopolysaccharidosis type II (Hunter syndrome), mucopolysaccharidosis type VI (Maroteaux-Lamy syndrome), mucopolysaccharidosis type VII (Sly disease), X-linked adrenoleukodystrophy, globoid cell leukodystrophy (Krabbe disease), metachromatic leukodystrophy, Gaucher disease, fucosidosis, alpha-mannosidosis, aspartylglucosaminuria, Farber disease, Tay-Sachs disease, Pompe disease, Niemann-Pick disease, and Wolman disease. In some embodiments, the patient has a central nervous system (CNS) disease. In some embodiments, the CNS disease is selected from Alzheimer's disease, Parkinson's disease, Huntington's disease, and multiple sclerosis. In some embodiments, the patient has a CDKL5 deficiency-associated disease. In some embodiments, the CDKL5 deficiency is selected from early infantile epileptic encephalopathy (EIEE), atypical Rett syndrome, CDKL5-associated epileptic encephalopathy, and West syndrome.

[0229] CDKL5 deficiency-related disorders: Early infantile epileptic encephalopathy (EIEE) disorders Early infantile epileptic encephalopathy (EIEE) is a neurological disorder characterized by seizures. The disorder manifests in newborns as epileptic seizures, usually within the first 3 months of life (most often within the first 10 days). Infants primarily have tonic seizures (causing muscle rigidity, typically in the back, legs, and arms), but may also experience focal seizures and, rarely, myoclonic seizures (causing muscle jerks or spasms of the upper body, arms, or legs). Symptom episodes may occur more than 100 times per day. Most infants with the disorder exhibit underdevelopment or structural abnormalities of some or all of the cerebral hemispheres. Some cases are caused by metabolic disorders or mutations in several different genes. The cause of many cases remains uncertain. There are several types of early infantile epileptic encephalopathy. An EEG reveals a characteristic pattern of high-voltage spike-and-wave discharges followed by hypoactivity. This pattern is known as "burst suppression." The seizures associated with this disease are difficult to treat, and the syndrome is severely progressive. Some children with this condition go on to develop other epileptic disorders, such as West syndrome and Lennox-Gastaut syndrome.

[0230] EIEE can be the result of different etiologies. Many cases are associated with structural brain abnormalities. Some cases result from metabolic disorders (e.g., cytochrome C oxidase deficiency, carnitine palmitoyltransferase II deficiency) or brain malformations (e.g., porencephaly or hemimegalencephaly), which may or may not be hereditary in origin. Genetic variants of EIEE are associated with mutations in certain genes, including ARX (Xp22.13), CDKL5 (Xp22), SL25A22 (11p15.5), and STXBP1 (9q34.1), among others. These genetic abnormalities are thought to lead to EIEE because they are associated with neurological dysfunction or brain hypoplasia.

[0231] Atypical Rett syndrome Atypical Rett syndrome is a neurodevelopmental disorder diagnosed when a child has some of the symptoms of Rett syndrome but does not meet all of the diagnostic criteria. Like classic Rett syndrome, atypical Rett syndrome occurs mostly in girls. Children with atypical Rett syndrome may have symptoms that are either milder or more severe than those seen in Rett syndrome. Several subtypes of atypical Rett syndrome have been defined. The early-onset seizure form is characterized by seizures in the first few months of life followed by the onset of Rett features, including developmental problems, loss of language skills, and repetitive hand-wringing or hand-washing. The early-onset seizure form is frequently caused by mutations in the X-linked CDKL5 gene (Xp22).

[0232] CDKL5-related epileptic encephalopathy CDKL5-associated epileptic encephalopathy is characterized by a three-stage evolution consisting of early epilepsy (stage 1), followed by infantile spasms (stage 2), and finally multifocal and intractable myoclonic epilepsy (stage 3). See, e.g., Bahi-Buisson et al. Epilepsia. 49:1027-1037 (2008). Genetic defects in cyclin-dependent kinase-like 5 (CDKL5) cause early-onset epileptic encephalopathy.

[0233] West syndrome disease West syndrome is a type of epilepsy characterized by seizures, abnormal electroencephalographic patterns called hypsarrhythmia, and sometimes intellectual disability. The seizures can range from extreme folding or "salaam" movements, bending the entire body in half, to less severe shoulder spasms or eye changes. These seizures usually begin within the first few months of life and can sometimes be treated with medication. West syndrome has many different causes. If a clear cause can be identified, it can be diagnosed as symptomatic West syndrome. If no cause can be identified, it is diagnosed as cryptogenic West syndrome. A clear cause of West syndrome can be identified in approximately 70-75% of affected individuals. X-linked West syndrome (X-linked infantile spasms syndrome or ISSX) can be caused by mutations in the CDKL5 or ARX genes on the X chromosome.

[0234] Mucopolysaccharidoses Mucopolysaccharidoses (MPS) are degenerative genetic disorders associated with enzyme deficiencies. Specifically, MPS is caused by the deficiency or inactivity of lysosomal enzymes that catalyze the stepwise metabolism of complex sugar molecules called glycosaminoglycans (GAGs). These enzyme deficiencies cause the accumulation of GAGs in affected subjects' cells and tissues, particularly in cellular lysosomes, leading to permanent, progressive cellular damage that affects the affected subject's appearance, physical abilities, organ function, and often mental development.

[0235] Eleven distinct enzyme defects have been identified, corresponding to seven distinct clinical categories of MPS, each characterized by the deficiency or inactivity of one or more enzymes that degrade the mucopolysaccharides heparan sulfate, dermatan sulfate, chondroitin sulfate, and keratan sulfate.

[0236] MPS I is divided into three subtypes based on the severity of symptoms. All three types result from a lack of, or insufficient levels of, the enzyme alpha-L-iduronidase (IDUA). Children born to parents with MPS I carry the defective gene.

[0237] MPS IH (also known as Hurler syndrome or alpha-L-iduronidase deficiency) is the most severe of the MPS I subtypes. Developmental delay becomes evident after the first year of life, and patients usually stop developing between the ages of two and four. This is followed by progressive mental decline and loss of physical skills. Speech may be limited by hearing loss and an enlarged tongue. Eventually, the clear corneal layer may become cloudy, and the retina may begin to degenerate. Carpal tunnel syndrome (or similar nerve compression elsewhere in the body) and limited range of motion are common. Affected children may be quite large and appear normal at birth but may have hernias in the groin (groin) or umbilicus (where the umbilical cord passes through the abdomen). Height growth may be faster than normal but begins to slow by the end of the first year, often stopping around age three. Many children grow with a short trunk and a maximum height of less than four feet. During the second year, the distinctive facial features (including a flat face, low nasal bridge, and protruding forehead) become more pronounced. By age 2, the ribs widen and become oar-shaped. The liver, spleen, and heart are often enlarged. Children may experience wheezing and recurrent upper respiratory tract and ear infections. Some children may have feeding difficulties, and many experience periodic intestinal problems. Children with Hurler syndrome often die by age 10 from obstructive airway disease, respiratory tract infections, and cardiac complications.

[0238] MPS IS (Scheie syndrome) is the mildest form of MPS 1. Symptoms generally begin to appear after age 5, and diagnosis is most commonly made after age 10. Children with Scheie syndrome may have normal intelligence or mild learning disabilities; some may have psychiatric problems. Glaucoma, retinal degeneration, and corneal opacities can significantly impair vision. Other problems include carpal tunnel syndrome or other nerve compression, joint stiffness, claw hand and foot deformities, short neck, and aortic valve disease. Some affected individuals also have obstructive airway disease and sleep apnea. Individuals with Scheie syndrome can live into adulthood.

[0239] MPS I HS (Hurler-Scheie syndrome) is less severe than Hurler syndrome alone. Symptoms generally begin between the ages of 3 and 8. Children may have moderate intellectual disability and learning difficulties. Skeletal and general abnormalities include short stature, a significantly small jaw, progressive joint stiffness, spinal cord compression, corneal opacity, hearing loss, heart disease, coarse facial features, and umbilical hernia. Respiratory disorders, sleep apnea, and heart disease may develop during adolescence. Some individuals with MPS I HS require continuous positive airway pressure therapy during sleep to facilitate breathing. Life expectancy generally extends into the late teens or early twenties.

[0240] MPS II (also known as Hunter syndrome) is caused by a deficiency of the enzyme iduronate sulfatase. Hunter syndrome has two clinical subtypes and is the only mucopolysaccharidosis in which only the mother can pass the defective gene to her son (because Hunter syndrome is inherited in an X-linked recessive manner). The incidence of Hunter syndrome is estimated to be 1 in 100,000 to 150,000 live male births.

[0241] Mutations in the IDS gene cause MPS II. The IDS gene provides instructions for producing the I2S enzyme, which is involved in the breakdown of large sugar molecules called glycosaminoglycans (GAGs). Specifically, I2S removes a chemical group known as sulfate from a molecule called sulfated alpha-L-iduronic acid, which is present in two GAGs called heparan sulfate and dermatan sulfate. I2S is located in lysosomes, intracellular compartments that digest and recycle different types of molecules.

[0242] Mucopolysaccharidosis type VI (MPS VI), or Maroteaux-Lamy disease, is a lysosomal storage disorder of the mucopolysaccharidoses characterized by severe physical disability without mental or intellectual regression. This rare mucopolysaccharidoses has a prevalence of 1 / 250,000 to 1 / 600,000 live births. In severe cases, the first clinical symptoms appear between 6 and 24 months of age and gradually become more pronounced: facial dysmorphism (macroglossia, a perpetually ajar, thick-set mouth), joint limitations, extremely severe dysostosis multiplex (flat vertebrae, kyphosis, scoliosis, pectus carinatum, bow legs, and long-standing bone deformities), small body size (<1.10 m), hepatomegaly, cardiac valve disorders, cardiomyopathy, hearing loss, and corneal opacity. Intellectual development is usually normal or virtually normal, but hearing and ophthalmic disorders can cause learning difficulties. The symptoms and severity of the disease vary considerably among patients, with intermediate and even milder forms also occurring (e.g., spondyloepiphyseal-metaphyseal dysplasia associated with cardiovascular disease). Like other mucopolysaccharidoses, Maroteaux-Lamy disease is associated with defects in enzymes involved in mucopolysaccharide metabolism, such as N-acetylgalactosamine-4-sulfatase (also known as arylsulfatase B, or ARSB). This enzyme metabolizes the sulfate group of dermatan sulfate (Neufeld et al.: "The mucopolysaccharidoses," The Metabolic Basis of Inherited Diseases, eds. Scriver et al., New York, McGraw-Hill, 1989, pp. 1565-1587). This enzyme defect blocks the stepwise degradation of dermatan sulfate, resulting in its accumulation in the lysosomes of storage tissues.

[0243] Mucopolysaccharidosis type VII (MPS VII), or Sly's disease, is an extremely rare lysosomal storage disorder of the mucopolysaccharidoses. The symptomatology is extremely heterogeneous: prenatal (nonimmune fetoplacental anasarca), severe neonatal (with dysmorphism, hernias, hepatosplenomegaly, clubfoot, dysostosis, marked hypotonia, and neurological impairment that progresses to growth retardation and profound intellectual disability in survivors), and a milder form (thoracic kyphosis) that is present even in adolescence or adulthood. The disease is caused by a defect in beta-D-glucuronidase (GUSB), which is involved in the lysosomal storage of various glycosaminoglycans (dermatan sulfate, heparan sulfate, and chondroitin sulfate). Currently, there is no effective treatment for this disease.

[0244] X-linked adrenoleukodystrophy Adrenoleukodystrophy (ALD) is an X-linked disorder affecting 1 in 20,000 (males) in either cerebral ALD in children or adrenomyeloneuropathy (AMN) in adults. Childhood ALD is the more severe form, with neurological symptoms onset between the ages of 5 and 12. Demyelination of the central nervous system progresses rapidly, resulting in death within several years. AMN is a milder form of the disease with a more progressive course that develops between the ages of 15 and 30. Adrenal insufficiency (Addison's disease) may still be the only clinical manifestation of ALD. The primary biochemical abnormality in ALD is the accumulation of very long-chain fatty acids (VLCFAs) due to defective beta-oxidation in peroxisomes.

[0245] More than 650 mutations in the ABCD1 gene have been found to cause X-linked adrenoleukodystrophy. This condition is characterized by varying degrees of cognitive and motor impairment and hormonal imbalances. Mutations that cause X-linked adrenoleukodystrophy suppress the production of all ALDP in approximately 75 percent of people with the disorder. Other people with X-linked adrenoleukodystrophy are able to produce ALDP, but the protein does not function normally. When there is little functional ALDP, VLCFAs cannot be broken down, and they accumulate in the body. These fatty deposits can be toxic to the adrenal glands (small glands at the top of each kidney) and to the insulating fatty layer (myelin) that surrounds many nerves in the body. Research suggests that VLCFA accumulation triggers an inflammatory response in the brain, which can lead to the breakdown of myelin. The destruction of these tissues leads to the signs and symptoms of X-linked adrenoleukodystrophy.

[0246] Globoid cell leukodystrophy Childhood globoid cell leukodystrophy (GLD, galactosylceramide lipidosis, or Krabbe disease) is a rare, autosomal recessive, degenerative disorder of the central and peripheral nervous system. The incidence in the United States is estimated at 1:100,000. The disorder is characterized by the presence of globoid cells (cells with multiple nuclei), degeneration of the protective myelin layer of nerves, and cell loss in the brain. GLD causes severe mental decline and motor retardation. The disorder is caused by a deficiency of galactocerebroside-β-galactosidase (GALC), an essential enzyme in myelin metabolism. The disease often affects children up to 6 months of age, but can also manifest in adolescents or adults. Symptoms include irritability, unexplained fever, stiff limbs (hypertonia), seizures, feeding problems, vomiting, and delayed mental and motor development. Additional symptoms include muscle weakness, spasticity, hearing loss, and blindness.

[0247] The galactosylceramidase gene (GALC) is approximately 60 kb in length and consists of 17 exons. Numerous mutations and polymorphisms have been identified in the mouse and human GALC genes, causing GLD of varying severity.

[0248] Metachromatic leukodystrophy Metachromatic leukodystrophy is a genetic disorder characterized by the intracellular accumulation of a fat called sulfatide. This accumulation specifically affects cells in the nervous system that produce myelin, a substance that insulates and protects nerves. Nerve cells, coated with myelin, create a tissue called white matter. Sulfatide accumulation in myelin-producing cells leads to the progressive destruction of white matter (leukodystrophy) throughout the nervous system, including the brain and spinal cord (central nervous system), the nerves that connect the brain and spinal cord to muscles, and the sensory cells that detect sensations such as touch, pain, heat, and sound (peripheral nervous system).

[0249] In people with metachromatic leukodystrophy, white matter damage causes a progressive decline in intellectual function and motor skills (e.g., walking ability). Affected individuals also develop loss of sensation in the limbs (peripheral neuropathy), incontinence, seizures, paralysis, inability to speak, blindness, and hearing loss. Eventually, they lose interest in their surroundings and become unresponsive. While neurological impairment is the primary feature of metachromatic leukodystrophy, effects of sulfatide accumulation on other organs and tissues have also been reported, mostly involving the gallbladder.

[0250] The most common form of metachromatic leukodystrophy, affecting approximately 50-60 percent of all people with the disorder, is called the late-onset infantile form. This form of the disorder usually appears during the second year of life. Affected children lose any acquired speech, become weak, and develop problems with walking (gait disturbance). As the disorder worsens, muscle tone generally first decreases and then increases until rigidity occurs. Individuals with the late-onset infantile form of metachromatic leukodystrophy typically survive only into infancy.

[0251] In 20 to 30 percent of people with metachromatic leukodystrophy, the onset occurs between age 4 and adolescence. In this juvenile form, the first signs of the disorder may be increased behavioral disturbances and academic difficulties. The disorder progresses more slowly than the late-onset infantile form, and affected individuals may survive approximately 20 years after diagnosis.

[0252] Most people with metachromatic leukodystrophy have a mutation in the ARSA gene, which provides instructions for making an enzyme called arylsulfatase A. This enzyme is located in tissues called lysosomes, which are the cell's recycling centers. Within the lysosomes, arylsulfatase A helps break down sulfatides. A small number of people with metachromatic leukodystrophy have a mutation in the PSAP gene. This gene provides instructions for making a protein that is cleaved (cut) into smaller proteins that aid enzymes in the breakdown of various fats. One of these smaller proteins is called saposin B; this protein works with arylsulfatase A to break down sulfatides.

[0253] Mutations in the ARSA or PSAP genes result in a reduced ability to break down sulfatides, resulting in the accumulation of these substances within cells. Excess sulfatides are toxic to the nervous system. Their accumulation gradually destroys myelin-producing cells, leading to the nervous system dysfunction that occurs in metachromatic leukodystrophy.

[0254] In some cases, individuals with very low arylsulfatase A activity do not show symptoms of metachromatic leukodystrophy, a condition called pseudoarylsulfatase deficiency.

[0255] The adult form of metachromatic leukodystrophy affects approximately 15 to 20 percent of those with the disorder. In this form, the first symptoms appear after the teenage years. Behavioral disorders such as alcoholism, drug abuse, or difficulties at school or work are often the first symptoms to appear. Affected individuals may experience psychiatric symptoms such as delusions or hallucinations. People with the adult form of metachromatic leukodystrophy may survive 20 to 30 years after diagnosis. During this time, there are periods of relative stability and periods of more rapid decline.

[0256] Metachromatic leukodystrophy gets its name from the appearance of cells with sulfatide accumulation under a microscope. The sulfatides form granules called metachromats, which means that when stained for examination, the granules take on a different color than the surrounding cellular material.

[0257] Gaucher disease Gaucher disease is a genetic disorder that affects many of the body's organs and tissues. The signs and symptoms of this condition vary widely among affected individuals. Researchers have described several forms of Gaucher disease based on their characteristic features.

[0258] Type 1 Gaucher disease is the most common form of the condition. Type 1 is also called non-neuropathic Gaucher disease because it does not usually affect the brain and spinal cord (central nervous system). The characteristics of this condition range from mild to severe and can appear at any time from infancy to adulthood. Key signs and symptoms include enlarged liver and spleen (hepatosplenomegaly), low red blood cell count (anemia), easy bruising caused by low blood platelets (thrombocytopenia), lung disease, and bone abnormalities such as bone pain, fractures, and arthritis.

[0259] Types 2 and 3 Gaucher disease are known as neuropathic forms of the disorder because they are characterized by problems affecting the central nervous system. In addition to the signs and symptoms described above, these conditions can cause abnormal eye movements, seizures, and brain damage. Type 2 Gaucher disease usually causes life-threatening medical problems that begin in early childhood. Type 3 Gaucher disease also affects the nervous system, but tends to worsen more slowly than type 2.

[0260] The most severe form of Gaucher disease is called perinatal lethal. This condition causes severe or life-threatening complications that begin before birth or during infancy. Perinatal lethal disease is characterized by widespread swelling caused by fluid accumulation before birth (hydrops fetalis); dry, scaly skin (ichthyosis) or other skin abnormalities; hepatosplenomegaly; distinctive facial features; and severe neurological problems. As the name suggests, most infants with perinatal lethal Gaucher disease survive only a few days after birth.

[0261] Another form of Gaucher disease is known as the cardiovascular form because it primarily affects the heart, causing hardening (calcification) of the heart valves. People with the cardiovascular form of Gaucher disease may also have eye abnormalities, bone disease, and a mildly enlarged spleen (splenomegaly).

[0262] Mutations in the GBA gene cause Gaucher disease. The GBA gene provides instructions for manufacturing an enzyme called beta-glucocerebrosidase. This enzyme breaks down a fatty substance called glucocerebroside into sugar (glucose) and simpler fat molecules (ceramides). Mutations in the GBA gene severely reduce or eliminate the activity of beta-glucocerebrosidase. Without enough of this enzyme, glucocerebroside and related substances can build up within cells to toxic levels. Tissues and organs are damaged by the abnormal accumulation and storage of these substances, causing the characteristic features of Gaucher disease.

[0263] Fucosidosis Fucosidosis is a condition that affects many areas of the body, particularly the brain. Affected individuals have intellectual disability that worsens with age, and many develop dementia later in life. People with the condition often have delayed development of motor skills, such as walking; their acquired skills decline over time. Additional signs and symptoms of fucosidosis include growth retardation; abnormal bone development (dysostosis multiplex); seizures; abnormal muscle stiffness (spasticity); clusters of dilated blood vessels that form small, dark red spots on the skin (angiokeratoma); a distinctive facial appearance, often described as "coarse"; recurrent respiratory tract infections; and abnormally large abdominal organs (visceromegaly).

[0264] In severe cases, symptoms typically appear in early childhood and affected individuals usually survive into late childhood. In milder cases, symptoms begin at age 1 or 2 years and affected individuals tend to survive into mid-adulthood.

[0265] In the past, researchers described two forms of the condition based on symptoms and age of onset, but current understanding is that the two forms are actually a single disorder with signs and symptoms that vary in severity.

[0266] Mutations in the FUCA1 gene cause fucosidosis. The FUCA1 gene provides instructions for making an enzyme called alpha-L-fucosidase. This enzyme plays a role in the breakdown of complexes of sugar molecules (oligosaccharides) attached to certain proteins and fats (glycoproteins and glycolipids). Alpha-L-fucosidase is responsible for cleaving off (cutting off) the sugar molecule called fucose toward the end of the breakdown process.

[0267] Mutations in the FUCA1 gene significantly reduce or eliminate the activity of the alpha-L-fucosidase enzyme. This lack of enzymatic activity results in incomplete breakdown of glycolipids and glycoproteins. These partially degraded compounds gradually accumulate in various cells and tissues throughout the body, causing cellular malfunction. Brain cells are particularly sensitive to the accumulation of glycolipids and glycoproteins, which can lead to cell death. It is believed that brain cell loss causes the neurological symptoms of fucosidosis. Glycolipid and glycoprotein accumulation also occurs in other organs, such as the liver, spleen, skin, heart, pancreas, and kidneys, contributing to additional symptoms of fucosidosis.

[0268] Alpha-mannosidosis Alpha-mannosidosis is a clinically well-characterized autosomal recessive lysosomal storage disorder (MA Chester et al., 1982, in Genetic Errors of Glycoprotein Metabolism, pp. 90–119, Springer Verlag, Berlin). Glycoproteins are normally degraded stepwise in lysosomes, and one of these steps, the cleavage of alpha-linked mannose residues from the nonreducing end during the regular degradation of N-linked glycoproteins, is catalyzed by the lysosomal enzyme alpha-mannosidase (EC 3.2.1.24). However, in alpha-mannosidosis, deficiency of the enzyme alpha-mannosidase leads to the accumulation of mannose-rich oligosaccharides. As a result, lysosomes increase in size and become distended, which impairs cellular function.

[0269] Symptoms of α-mannosidosis include psychomotor retardation, ataxia, hearing impairment, lymphocyte vacuolation in the peripheral blood, and skeletal changes.

[0270] Mutations in the MAN2B1 gene cause alpha-mannosidosis. This gene provides instructions for manufacturing an enzyme called alpha-mannosidase. This enzyme works in lysosomes, compartments in cells that digest and recycle materials. Within the lysosomes, this enzyme helps break down complexes of sugar molecules (oligosaccharides) that are attached to certain proteins (glycoproteins). In particular, alpha-mannosidase helps break down oligosaccharides that contain a sugar molecule called mannose.

[0271] Mutations in the MAN2B1 gene prevent the alpha-mannosidase enzyme from performing its role in breaking down mannose-containing oligosaccharides. These oligosaccharides accumulate in lysosomes, causing cellular malfunction and ultimately death. Tissues and organs are damaged by the abnormal accumulation of oligosaccharides and the resulting cell death, resulting in the characteristic features of alpha-mannosidosis.

[0272] Aspartylglucosaminuria Aspartylglucosaminuria is a condition that causes progressive mental decline. Infants with aspartylglucosaminuria appear healthy at birth, and development is typically normal throughout early childhood. The first sign of the condition, evident around age 2 or 3, is usually language delay. Mild intellectual disability emerges later, and learning occurs at a slower rate. Intellectual disability progressively worsens during adolescence. Most individuals with the disorder lose much of their learned speech skills, and affected adults usually have only a few words in their vocabulary. Adults with aspartylglucosaminuria may develop seizures or movement disorders.

[0273] People with this condition may also have progressively weaker bones that fracture easily (osteoporosis), an abnormally large range of joint motion (hypermobility), and loose skin. Affected individuals tend to have distinctive facial features, including widely spaced eyes (hypertelorism), small ears, and full lips. The nose is short and broad, and the face is usually square. Children with this condition may be tall for their age, but the lack of a pubertal growth spurt generally results in small adults. Affected children also tend to have frequent upper respiratory tract infections. Individuals with aspartylglucosaminuria usually survive into mid-adulthood.

[0274] Mutations in the AGA gene cause aspartylglucosaminuria. The AGA gene provides instructions for producing an enzyme called aspartylglucosaminidase. This enzyme is active in lysosomes, intracellular structures that act as recycling centers. Within the lysosomes, this enzyme helps break down complexes of sugar molecules (oligosaccharides) that are attached to certain proteins (glycoproteins).

[0275] Mutations in the AGA gene result in a lack or deficiency of the aspartylglucosaminidase enzyme in lysosomes, preventing the normal breakdown of glycoproteins. As a result, glycoproteins can accumulate within the lysosomes. Excess glycoproteins can interfere with the normal function of cells and lead to their destruction. Glycoprotein accumulation appears to particularly affect nerve cells in the brain; loss of these cells causes many of the signs and symptoms of aspartylglucosaminuria.

[0276] Farber disease Farber disease is an inherited condition in which the body's breakdown and use of fats (lipid metabolism) is impaired. People with the condition have abnormal accumulations of lipids (fats) throughout the body's cells and tissues, especially around the joints. Farber disease is characterized by three typical symptoms: a hoarse or weak cry, small fatty masses (lipogranulomas) under the skin and in other tissues, and swollen, painful joints. Other symptoms may include difficulty breathing, enlarged liver and spleen (hepatosplenomegaly), and developmental delay. Researchers have described seven types of Farber disease based on characteristic features. The condition is caused by mutations in the ASAH1 gene and is inherited in an autosomal recessive manner.

[0277] Tay-Sachs disease Tay-Sachs disease is a rare genetic disorder that gradually destroys nerve cells (neurons) in the brain and spinal cord.

[0278] The most common form of Tay-Sachs disease becomes apparent during infancy. Infants with this disorder typically appear normal until the age of 3 to 6 months, at which time development slows and the muscles used for movement become weaker. Affected infants lose motor skills such as rolling over, sitting, and crawling. They also develop an exaggerated startle response to loud noises. As the disease progresses, children with Tay-Sachs disease experience seizures, vision and hearing loss, intellectual disability, and paralysis. An eye abnormality called cherry erythema, which can be identified on an eye exam, is a hallmark of the disorder. Children with this severe form of Tay-Sachs disease usually survive only into early infancy.

[0279] Other forms of Tay-Sachs disease are extremely rare. Signs and symptoms may appear in infancy, adolescence, or adulthood but are usually milder than those seen in the infantile form. Characteristic features include muscle weakness, loss of muscle coordination (ataxia) and other movement disorders, speech disorders, and psychosis. These signs and symptoms vary widely among people with late-onset Tay-Sachs disease.

[0280] Mutations in the HEXA gene cause Tay-Sachs disease. The HEXA gene provides instructions for manufacturing part of an enzyme called beta-hexosaminidase A, which plays an important role in the brain and spinal cord. This enzyme is located in lysosomes, intracellular structures that break down harmful substances and act as recycling centers. Within lysosomes, beta-hexosaminidase A helps break down a fatty substance called GM2 ganglioside.

[0281] Mutations in the HEXA gene interfere with the activity of beta-hexosaminidase A, preventing the enzyme from breaking down GM2 ganglioside. As a result, this substance accumulates to toxic levels in neurons, particularly in the brain and spinal cord. The progressive damage caused by the accumulation of GM2 ganglioside leads to the destruction of these neurons, which causes the signs and symptoms of Tay-Sachs disease.

[0282] Because Tay-Sachs disease impairs the function of lysosomal enzymes and involves the accumulation of GM2 ganglioside, the condition is sometimes referred to as a lysosomal storage disorder or GM2-gangliosidosis.

[0283] Pompe disease Pompe disease (also known as glycogen storage disease type II; acid alpha-glucosidase deficiency; acid maltase deficiency; GAA deficiency; GSD II; glycogen storage disease type II; glycogen storage disease, generalized, cardiac; cardiomegalia glycogenica diffusa; acid maltase deficiency; AMD; or alpha-1,4-glucosidase deficiency) is an autosomal recessive metabolic genetic disorder characterized by mutations in the gene encoding the lysosomal enzyme acid alpha-glucosidase (GAA) (also known as acid maltase). Mutations in the GAA gene eliminate or reduce the GAA enzyme's ability to hydrolyze the α-1,4 and α-1,6 linkages in glycogen, maltose, and isomaltose. As a result, glycogen accumulates in lysosomes and the cytoplasm of cells throughout the body, leading to cell and tissue destruction. Particularly affected tissues include skeletal and cardiac muscle. The accumulated glycogen causes progressive muscle weakness, leading to cardiac hypertrophy, difficulty walking, and respiratory insufficiency.

[0284] Three forms of Pompe disease have been identified, including typical infantile-onset disease, atypical infantile-onset disease, and late-onset disease. Typical infantile-onset disease is characterized by muscle weakness, low muscle tone, hepatomegaly, and cardiac defects. The incidence of the disease is approximately 1 in 140,000. Patients with this form of the disease often die of heart failure within the first year of life. The atypical infantile-onset form of the disease is characterized by delayed motor skills, progressive muscle weakness, and in some cases, cardiac hypertrophy. Patients with this form of the disease often survive only into early infancy due to respiratory failure. Late-onset disease may present in infancy, adolescence, or late adulthood and is characterized by progressive muscle weakness of the legs and trunk.

[0285] Niemann-Pick disease Niemann-Pick disease is a condition that affects many body systems. It has a wide range of symptoms that vary in severity. Niemann-Pick disease is divided into four main types: A, B, C1, and C2. These types are classified based on genetic factors and the signs and symptoms of the condition.

[0286] Infants with Niemann-Pick disease type A typically present with an enlarged liver and spleen (hepatosplenomegaly) by the age of three months and do not gain weight or grow at the expected rate (failure to thrive). Affected children develop normally until about age one, at which time they experience progressive loss of mental ability and movement (psychomotor regression). Children with Niemann-Pick disease type A also develop extensive lung damage (interstitial lung disease), which can lead to recurrent lung infections and eventually respiratory failure. All affected children have an eye abnormality called cherry erythema, which can be identified by eye examination. Children with Niemann-Pick disease type A generally survive only into early infancy.

[0287] Niemann-Pick type B disease usually appears in middle childhood. The signs and symptoms of this type are similar to those of type A but are less severe. People with Niemann-Pick type B disease often have hepatosplenomegaly, recurrent lung infections, and low blood platelet counts (thrombocytopenia). They also have short stature and delayed bone mineralization (delayed bone age). Approximately one in three affected individuals has cherry erythema eye abnormality or neurological problems. People with Niemann-Pick type B disease usually survive into adulthood.

[0288] Niemann-Pick disease types A and B are caused by mutations in the SMPD1 gene. This gene provides instructions for producing an enzyme called acid sphingomyelinase. This enzyme is found in lysosomes, intracellular compartments that break down and recycle different types of molecules. Acid sphingomyelinase is involved in converting a fat (lipid) called sphingomyelin into another type of lipid called ceramide. Mutations in SMPD1 lead to a deficiency of acid sphingomyelinase, resulting in reduced breakdown of sphingomyelin and the accumulation of this fat in cells. This accumulation of fat causes cells to malfunction and ultimately die. Over time, cell loss impairs the function of tissues and organs, including the brain, lungs, spleen, and liver, in people with Niemann-Pick disease types A and B.

[0289] Wolman disease Lysosomal acid lipase deficiency is an inherited condition characterized by impaired breakdown and use of fats and cholesterol in the body (lipid metabolism). Affected individuals accumulate harmful amounts of fats (lipids) in cells and tissues throughout the body, which commonly leads to liver disease. There are two forms of the condition: the most severe and rare form begins in early childhood; the less severe form can begin in early childhood or late adulthood.

[0290] In the severe, early-onset form of lysosomal acid lipase deficiency, lipids accumulate throughout the body, particularly in the liver, within the first week of life. This lipid accumulation leads to several health problems, including enlargement of the liver and spleen (hepatosplenomegaly), poor weight gain, yellowing of the skin and whites of the eyes (jaundice), vomiting, diarrhea, fatty stools (steatorrhea), and reduced absorption of nutrients from food (malabsorption). In addition, affected infants often have calcification in the small hormone-producing glands above each kidney (adrenal glands), low blood iron levels (anemia), and developmental delays. Scar tissue rapidly forms in the liver, leading to liver disease (cirrhosis). Infants with this form of lysosomal acid lipase deficiency suffer from multiple organ failure and severe malnutrition and generally survive only until the age of one year.

[0291] In late-onset lysosomal acid lipase deficiency, signs and symptoms vary and usually begin in mid-childhood but can appear at any time up to late adulthood. Nearly all affected individuals have an enlarged liver (hepatomegaly); an enlarged spleen (splenomegaly) may also occur. Approximately two in three individuals have liver fibrosis, which eventually leads to cirrhosis. Approximately one in three individuals with the late-onset form have malabsorption, diarrhea, vomiting, and steatorrhea. Individuals with this form of lysosomal acid lipase deficiency may have elevated liver enzymes and high cholesterol levels, which can be detected with blood tests.

[0292] Some people with this late-onset lysosomal acid lipase deficiency develop a buildup of fatty deposits in the walls of their arteries (atherosclerosis). These deposits are common in the general population, but they usually begin at an earlier age in people with lysosomal acid lipase deficiency. The deposits narrow the arteries, increasing the chance of a heart attack or stroke. The life expectancy of people with late-onset lysosomal acid lipase deficiency depends on the severity of associated health problems.

[0293] The two forms of lysosomal acid lipase deficiency were once thought to be separate disorders: the early-onset form was known as Wolman disease, and the later-onset form was known as cholesterol ester storage disease. Although these two disorders share the same genetic cause and are now considered to be a single entity, these names are still sometimes used to distinguish between the forms of lysosomal acid lipase deficiency.

[0294] Mutations in the LIPA gene cause lysosomal acid lipase deficiency. The LIPA gene provides instructions for producing an enzyme called lysosomal acid lipase. This enzyme is found in cellular compartments called lysosomes, which digest and recycle materials the cell no longer needs. The lysosomal acid lipase enzyme breaks down lipids, such as cholesterol esters and triglycerides. The lipids, cholesterol and fatty acids, produced through these processes are either used by the body or transported to the liver for removal.

[0295] Mutations in the LIPA gene lead to a deficiency (deficiency) of functional lysosomal acid lipase. The severity of the condition depends on how much of the working enzyme is available. Individuals with early-onset lysosomal acid lipase deficiency do not have normal enzyme activity. Individuals with late-onset lysosomal acid lipase deficiency may have some residual enzyme activity, the amount of which generally determines the severity of signs and symptoms.

[0296] Decreased lysosomal acid lipase activity leads to the accumulation of cholesterol esters, triglycerides, and other lipids within lysosomes, causing fat retention in multiple tissues. When the body cannot break down these lipids to produce cholesterol, alternative methods of cholesterol production increase, leading to higher-than-normal blood cholesterol levels. Excess lipids are transported to the liver for removal. Many of these cannot be properly broken down and therefore cannot be removed from the body; instead, they accumulate in the liver, leading to liver disease. Progressive lipid accumulation in tissues leads to organ dysfunction and the signs and symptoms of lysosomal acid lipase deficiency.

[0297] Sickle cell disease Sickle cell disease is a group of disorders that affect hemoglobin, the molecule in red blood cells that delivers oxygen to cells throughout the body. People with the disorder have an atypical hemoglobin molecule called hemoglobin S, which can cause red blood cells to deform into a sickle or crescent shape.

[0298] The signs and symptoms of sickle cell disease are caused by the sickling of red blood cells. When red blood cells sickle, they break down faster than normal, which can lead to anemia. Mutations in the HBB gene cause sickle cell disease.

[0299] X-linked hyperimmunoglobulin M syndrome X-linked hyper-IgM syndrome is a condition that affects the immune system and occurs almost exclusively in men. Individuals with this disorder have abnormal levels of proteins called antibodies, or immunoglobulins. Antibodies help the body fight infection by binding to and destroying specific foreign particles and pathogens. There are several classes of antibodies, each with a different function in the immune system. The name of the condition implies that affected individuals consistently have high levels of immunoglobulin M (IgM), although some individuals have normal levels of this antibody. Individuals with X-linked hyper-IgM syndrome have low levels of three other classes of antibodies: immunoglobulin G (IgG), immunoglobulin A (IgA), and immunoglobulin E (IgE). The lack of certain antibody classes makes it difficult for individuals with this disorder to fight off infection. Mutations in the CD40LG gene cause X-linked hyper-IgM syndrome.

[0300] Duchenne muscular dystrophy Muscular dystrophies are a group of genetic conditions characterized by progressive muscle weakness and wasting (atrophy). Duchenne and Becker muscular dystrophies are two related conditions that primarily affect the skeletal muscles used for movement and the heart muscle (myocardium). These forms of muscular dystrophies occur almost exclusively in men.

[0301] Duchenne and Becker muscular dystrophies have similar signs and symptoms and are caused by different mutations in the same gene. Mutations in the DMD gene cause Duchenne and Becker forms of muscular dystrophy.

[0302] Severe obesity Obesity is highly prevalent and frequently associated with serious, life-threatening complications such as type 2 diabetes, cardiovascular disease, and cancer. Severe obesity is often broadly defined as a BMI of 35 kg / m 2 Obesity is defined as a state in which the body is overweight or obese. Genes involved in obesity include ADCY3, BDNF, KSR2, and LEP.

[0303] The method can be part of an autologous or allogeneic procedure. Autologous means that the cells used to treat a patient originate from the patient. Allogeneic means that the cells or cell population used to treat a patient do not originate from the patient but originate from a donor.

[0304] In some embodiments, the cells are administered to a patient undergoing immunosuppressive treatment. In one embodiment, the administered cells have been rendered resistant to at least one immunosuppressant. In some embodiments, the immunosuppressive treatment aids in the selection and expansion of the modified cells within the patient.

[0305] Administration of the cells may be by any convenient technique, including aerosol inhalation, injection, ingestion, transfusion, implantation, or transplantation. The compositions described herein may be administered to a patient, for example, subcutaneously, intradermally, intratumorally, intranodally, intramuscularly, by intravenous or intralymphatic injection, or intraperitoneally. In one aspect, the cell composition is administered by intravenous injection, where it can migrate to the desired location, such as the bone marrow.

[0306] While individual needs vary, determining the optimal range of effective amounts of a given cell type for a particular disease or condition is within the skill of the art. Effective amount means an amount that provides a therapeutic or prophylactic benefit. The dosage administered will depend on the age, health, and weight of the recipient, type of concomitant treatment (if any), frequency of treatment, and the nature of the desired effect. In some embodiments, administration of cells or cell populations is at a dose of about 10 per kg of body weight. 4 ~10 9 In some embodiments, the administration of about 10 cells 5 ~10 6 cells / kg body weight are administered. All integer values ​​of cell number within that range are envisioned.

[0307] The cells can be administered in one or more doses. In another embodiment, an effective amount of cells is administered as a single dose. In another embodiment, an effective amount of cells is administered as more than one dose over a period of time. The timing of administration is within the discretion of the attending physician and depends on the patient's condition.

[0308] In some embodiments, administering genetically modified HSC cells can include treating the patient with a myeloablative and / or immunosuppressive regimen to deplete host bone marrow stem cells and prevent rejection. In some embodiments, the patient is administered chemotherapy and / or radiation therapy. In some embodiments, the patient is administered a reduced-dose chemotherapy regimen. In some embodiments, a reduced-dose chemotherapy regimen using 25% of the standard dose of busulfan can be sufficient to achieve significant engraftment of modified cells while reducing conditioning-related toxicity (Aiuti A. et al. (2013), Science 23;341 (6148)). A more intensive chemotherapy regimen can be based on administering both busulfan and fludarabine as depleting agents for endogenous HSCs. In some embodiments, the doses of busulfan and fludarabine are approximately 50% and 30% of the doses used in standard allogeneic transplantation. In another embodiment, the cells are administered following B cell ablative therapy, such as an agent reactive with CD20, e.g., Rituxan. In some embodiments, the patient is administered a chemotherapeutic agent, e.g., fludarabine, external beam radiation therapy (XRT), cyclophosphamide, or an antibody such as OKT3 or CAMPATH.

[0309] In certain embodiments, the genetically modified cells are administered to a subject as a combination therapy with an immunosuppressant. Exemplary immunosuppressants include sirolimus, tacrolimus, cyclosporine, mycophenolate, antithymocyte globulin, corticosteroids, calcineurin inhibitors, antimetabolites such as methotrexate, post-transplant cyclophosphamide, or any combination thereof. In some embodiments, the subject is pre-treated with sirolimus or tacrolimus alone as prophylaxis against GVHD. In some embodiments, the cells are administered to the subject before the immunosuppressant. In some embodiments, the cells are administered to the subject after the immunosuppressant. In some embodiments, the cells are administered to the subject concurrently with the immunosuppressant. In some embodiments, the cells are administered to the subject without the immunosuppressant. In some embodiments, the patient receiving the genetically modified cells is administered the immunosuppressant for 6 months, 5 months, 4 months, 3 months, 2 months, 1 month, 3 weeks, 2 weeks, or less than 1 week.

[0310] Delivery method Compositions comprising sequence-specific endonucleases, nucleic acids encoding these nucleases, and DNA templates comprising exogenous sequences, as well as proteins and / or polynucleotides described herein for modifying cells, can be delivered in vivo or ex vivo by any suitable means.

[0311] In some embodiments, the method comprises at least two transfection steps, wherein the first transfection step introduces a sequence-specific endonuclease into cells as a polypeptide or polynucleotide, and the second transfection step introduces a DNA template containing the exogenous sequence to be inserted. In some embodiments, the first transfection step is by electroporation or nanoparticle transformation. In some embodiments, the second transfection step is by electroporation, nanoparticle, or viral transformation. In preferred embodiments, the method of the present invention does not comprise a step involving a viral vector.

[0312] In some cases, the present invention may be practiced using as a DNA template an integration-deficient or non-integrating viral vector that does not integrate itself into the genome. In such cases, the viral sequence is not considered to constitute a "viral vector" because its expression, if any, is not involved in exogenous gene-targeted integration.

[0313] In some embodiments, a polypeptide may be synthesized in situ within a cell as a result of introducing a nucleic acid encoding the polypeptide into the cell. In some embodiments, a polypeptide may be produced extracellularly and then introduced into the cell. Methods for introducing a polynucleotide construct into a cell are known in the art, and non-limiting examples include stable transformation methods in which the polynucleotide construct is integrated into the cell's genome, transient transfection methods in which the polynucleotide construct is not integrated into the cell's genome, and virus-mediated methods. In some embodiments, a polynucleotide may be introduced into a cell via a recombinant viral vector (e.g., retrovirus, adenovirus), liposome, or the like. In one embodiment, transient transformation methods include, for example, microinjection, electroporation, or particle bombardment. For intracellular expression, a polynucleotide may be contained in a vector, more particularly, a plasmid or virus.

[0314] In some embodiments, cells are transiently transfected with a nucleic acid encoding a sequence-specific endonuclease reagent, and in some embodiments, about 80% of the endonuclease reagent is degraded by 30 hours, preferably 24 hours, and more preferably 20 hours after transfection.

[0315] In some embodiments, the sequence-specific endonuclease encoded by the mRNA can be synthesized with a cap that enhances its stability according to techniques well known in the art, for example, as described by Kore AL et al. (Locked nucleic acid (LNA)-modified dinucleotide mRNA cap analogue: synthesis, enzymatic incorporation, and utilization (2009) J Am Chem Soc. 131 (18):6364-5).

[0316] In some embodiments, the sequence-specific endonuclease as described herein can also be delivered using a vector that contains one or more coding sequences of CRISPR / Cas system, zinc finger or TALEN protein.Can use any vector system, including but not limited to, plasmid vector, retrovirus vector, lentivirus vector, adenovirus vector, poxvirus vector; herpesvirus vector and adeno-associated virus vector etc.See also U.S. Patent Nos. 6,534,261; 6,607,882; 6,824,978; 6,933,113; 6,979,539; 7,013,219; and 7,163,824, which are incorporated herein by reference in their entirety.

[0317] Conventional viral and non-viral gene transfer methods can be used to introduce DNA templates containing nucleic acids encoding sequence-specific endonucleases and exogenous sequences into cells (e.g., mammalian cells) and target tissues. In particular, nanoparticles and ribonucleoprotein complexes (RNPs) can be used to introduce sequence-specific nuclease reagents into cells, as described, for example, by Vakulskas, CA et al. [A high-fidelity Cas9 mutant delivered as a ribonucleoprotein complex enables efficient gene editing in human hematopoietic stem and progenitor cells (2018) Nat Med 24, 1216-1224.].

[0318] Viral vector delivery systems include DNA and RNA viruses that have either episomal or integrated genomes after delivery to the cell. For reviews of gene therapy procedures, see Anderson, Science 256:808-813 (1992); Nabel & Feigner, TIBTECH 11:211-217 (1993); Mitani & Caskey, TIBTECH 11:162-166 (1993); Dillon, TIBTECH 11:167-175 (1993); Miller, Nature 357:455-460 (1992); Van Brunt, Biotechnology 6(10):1149-1154 (1988); Vigne, Restorative Neurology and Neuroscience 8:35-36 (1995); Kremer & Perricaudet, British Medical Bulletin 51(1):31-44 (1995); Haddada et al., in Current Topics in Microbiology and Immunology, Doerfler and Bohm (eds.) (1995); and Yu et al., Gene Therapy 1:13-26 (1994).

[0319] In some embodiments, non-viral methods of nucleic acid delivery include electroporation, lipofection, microinjection, biolistics, virosomes, liposomes, immunoliposomes, polycation or lipid:nucleic acid conjugates, naked DNA, naked RNA, capped RNA, artificial virions, and drug-enhanced uptake of DNA. Sonoporation, for example, using the Sonitron 2000 system (Rich-Mar), can also be used to deliver nucleic acids.

[0320] In some embodiments, electroporation processes can be used to transfect cells. In some embodiments, these processes are typically carried out in a sealed chamber containing parallel plate electrodes that generate a pulsed electric field between the parallel plate electrodes of greater than 100 volts / cm and less than 5,000 volts / cm substantially uniformly throughout the treatment volume, as described in WO 2004 / 083379, particularly from page 23, line 25 to page 29, line 11, which is incorporated by reference. One such electroporation chamber preferably has a pulsed electric field of greater than 100 volts / cm and less than 5,000 volts / cm, the square of the electrode gap (cm). 2 ) to the chamber volume (cm 3 ) divided by the geometric factor (cm -1 ) where the geometric factor is 0.1 cm -1 The suspension of cells and sequence-specific reagents is present in a medium adjusted to have a conductivity ranging from 0.01 to 1.0 millisiemens. Typically, the cell suspension is subjected to one or more pulsed electric fields. This method allows for scalable treatment volumes of the suspension, while maintaining a substantially uniform treatment time for the cells within the chamber.

[0321] In some embodiments, different exogenous sequences or multiple copies of an exogenous sequence can be included in a single DNA template. In some embodiments, the DNA template can include a nucleic acid sequence encoding a ribosomal skip sequence, such as a sequence encoding a 2A peptide. The 2A peptide, identified in the aphthovirus subgroup of picornaviruses, causes the ribosome to "skip" from one codon to the next without forming a peptide bond between the two amino acids encoded by the codon (see Donnelly et al., J. of General Virology 82: 1013-1025 (2001); Donnelly et al., J. of Gen. Virology 78: 13-21 (1997); Doronina et al., Mol. And. Cell. Biology 28(13): 4227-4239 (2008); Atkins et al., RNA 13: 803-810 (2007)).

[0322] "Codon" refers to three nucleotides on an mRNA (or on the sense strand of a DNA molecule) that are translated into one amino acid residue by a ribosome. Thus, two polypeptides can be synthesized from a single, continuous open reading frame in an mRNA when the polypeptides are separated by an in-frame 2A oligopeptide sequence. Such ribosomal skipping mechanisms are well known in the art and are known to be used by some vectors for the expression of several proteins encoded by a single messenger RNA.

[0323] In one embodiment, the polynucleotide encoding the sequence-specific endonuclease of the present invention can be mRNA, which is directly introduced into cells, for example, by electroporation. In some embodiments, cells can be electroporated using cytoPulse technology, which uses a pulsed electric field to temporarily permeabilize living cells for cellular material delivery. This technology, based on the use of PulseAgile (BTX Havard Apparatus, 84 October Hill Road, Holliston, Mass. 01746, USA) electroporation wavelengths, allows precise control of pulse duration, intensity, and pulse intervals (see U.S. Pat. No. 6,010,613 and published international application WO 2004 / 083379). All of these parameters can be varied to achieve optimal conditions for minimal cell death and high transfection efficiency. An initial high electric field pulse allows membrane pore formation, and a subsequent lower electric field pulse allows the polynucleotide to be transported into the cell.

[0324] Additional exemplary nucleic acid delivery systems include those provided by Amaxa Biosystems (Cologne, Germany), Maxcyte, Inc. (Rockville, Md.), BTX Molecular Delivery Systems (Holliston, Mass.) and Copernicus Therapeutics Inc. (see, for example, U.S. Patent No. 6,008,336).Lipofection is described, for example, in U.S. Patent Nos. 5,049,386; 4,946,787; and 4,897,355, and lipofection reagents are commercially available (e.g., Transfectam and Lipofectin).Cationic and neutral lipids suitable for efficient receptor-recognition lipofection of polynucleotides include those described in Felgner, WO 91 / 17424, WO 91 / 16024.

[0325] The preparation of lipid:nucleic acid complexes, including targeted liposomes such as immunolipid complexes, is well known to those of skill in the art (e.g., Crystal, Science 270:404-410 (1995); Blaese et al., Cancer Gene Ther. 2:291-297 (1995); Behr et al., Bioconjugate Chem. 5:382-389 (1994); Remy et al., Bioconjugate Chem. 5:647-654 (1994); Gao et al., Gene Therapy 2:710-722 (1995); Ahmad et al., Cancer Res. 52:4817-4820). (1992); see U.S. Patent Nos. 4,186,183, 4,217,344, 4,235,871, 4,261,975, 4,485,054, 4,501,728, 4,774,085, 4,837,028, and 4,946,787).

[0326] In some embodiments, the DNA template and / or sequence-specific endonuclease are encoded by a viral vector. In some embodiments, an adenovirus-based system can be used. Adenovirus-based vectors can achieve very high transduction efficiency in many cell types and do not require cell division. Such vectors have been able to achieve high titer and high level of expression. This vector can be produced in large quantities using a relatively simple system. Adeno-associated virus ("AAV") vectors are also used to transduce cells with target nucleic acids, for example, in the in vitro production of nucleic acids and peptides, and for in vivo and ex vivo gene therapy procedures (see, e.g., West et al., Virology 160:38-47 (1987); U.S. Patent No. 4,797,368; WO 93 / 24641; Kotin, Human Gene Therapy 5:793-801 (1994); Muzyczka, J. Clin. Invest. 94:1351 (1994)). The construction of recombinant AAV vectors has been described in numerous publications, including U.S. Pat. No. 5,173,414; Tratschin et al., Mol. Cell. Biol. 5:3251-3260 (1985); Tratschin, et al., Mol. Cell. Biol. 4:2072-2081 (1984); Hermonat & Muzyczka, PNAS 81:6466-6470 (1984); and Samulski et al., J. Virol. 63:03822-3828 (1989).

[0327] Recombinant adeno-associated virus vectors (rAAV) are a promising alternative gene delivery system based on the defective, nonpathogenic parvovirus adeno-associated type 2 virus. All vectors are derived from plasmids that contain only AAV 145-bp inverted terminal repeats flanking the transgene expression cassette. Efficient gene transfer and stable transgene delivery via integration into the genome of transduced cells are key features of this vector system (Wagner et al., Lancet 351:9117 1702-3 (1998), Kearns et al., Gene Ther. 9:748-55 (1996)). Other AAV serotypes, including, but not limited to, AAV1, AAV3, AAV4, AAV5, AAV6, AAV8, AAV 8.2, AAV9, and AAV rh10, as well as pseudotyped AAVs such as AAV2 / 8, AAV2 / 5, and AAV2 / 6, can also be used in accordance with the present invention.

[0328] In some embodiments, the cells are administered an effective amount of one or more caspase inhibitors in combination with the AAV vector.

[0329] The sequence-specific endonuclease and the DNA template construct can be delivered using the same or different systems. For example, the DNA template polynucleotide can be provided as a PCR product, while the sequence-specific endonuclease can be delivered as an mRNA composition.

[0330] In some embodiments, one or more reagents can be delivered to cells using nanoparticles. In some embodiments, the nanoparticles are coated with a ligand, such as an antibody (Uniprot #P17813) with specific affinity for a cell surface protein, such as CD105. In some embodiments, the nanoparticles are biodegradable polymer nanoparticles in which a sequence-specific endonuclease in the form of a polynucleotide is complexed with a polybeta-aminoester polymer and coated with polyglutamic acid (PGA).

[0331] composition The present invention is also directed to compositions comprising an effective amount of genetically modified cells prepared by the methods described herein. In some aspects, the present invention provides pharmaceutical compositions comprising an effective amount of genetically modified cells as described herein.

[0332] In some embodiments, the compositions can be used as pharmaceuticals. In some embodiments, the compositions can be used to treat diseases such as those described herein. In some embodiments, the compositions can be useful for treating cancer in a subject in need thereof.

[0333] In some embodiments, the composition comprises a cell population, wherein at least 40% of the cells in the population have been modified according to any one of the methods described herein. In some embodiments, at least 50%, 60%, 70%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% of the cells in the population have been modified according to any one of the methods described herein. In some embodiments, the composition comprises a pure cell population, wherein 100% of the cells have been genetically modified as described herein.

[0334] Genetically modified cells can be administered alone or as a pharmaceutical composition in combination with diluents and / or other ingredients. In some embodiments, pharmaceutical compositions can include genetically modified cells (such as immune cells, HSCs, or iPS cells) as described herein in combination with one or more pharmaceutically or physiologically acceptable carriers, diluents, or excipients. Such compositions can include buffers such as neutral buffered saline, phosphate buffered saline, carbohydrates such as glucose, mannose, sucrose, or dextran, mannitol, proteins, polypeptides, or amino acids, such as glycine, antioxidants, chelating agents such as EDTA or glutathione, adjuvants (e.g., aluminum hydroxide), and preservatives. In some embodiments, the compositions are formulated for intravenous administration.

[0335] In some embodiments, genetically modified cells as described herein can be cryopreserved. In some embodiments, cells can be cryopreserved after isolation from a subject and before any genetic modification. In some embodiments, genetically modified cells are cryopreserved after genetic modification and before injection into a subject. In some embodiments, genetically modified cells are cryopreserved after ex vivo expansion.

[0336] In one aspect, the present invention provides a cryopreserved pharmaceutical composition comprising: (a) a viable composition of genetically modified cells as described herein; (b) a cryopreservation agent in an amount sufficient to cryopreserve the cells; and (c) a pharmaceutically acceptable carrier.

[0337] As used herein, "cryopreservation" refers to the preservation of cells by cooling to low subzero temperatures, such as (typically) 77 K or -196°C (the boiling point of liquid nitrogen). Cryopreservation also refers to storing cells at temperatures between 0°C and 10°C in the absence of any cryopreservative. At these low temperatures, any biological activity, including biochemical reactions that would lead to cell death, is effectively stopped. Cryoprotectants are often used at subzero temperatures to protect cells from damage caused by deep freezing or warming to room temperature.

[0338] In some embodiments, the damaging effects associated with freezing can be avoided by (a) the use of cryoprotectants, (b) controlling the rate of freezing, and (c) storing at temperatures low enough to minimize degradative reactions.

[0339] Cryoprotectants that can be used include, but are not limited to, dimethyl sulfoxide (DMSO), glycerol, polyvinylpyrrolidine, polyethylene glycol, albumin, dextran, sucrose, ethylene glycol, i-erythritol, D-sorbitol, D-mannitol, D-sorbitol, i-inositol, D-lactose, choline chloride, amino acids, methanol, acetamide, glycerol monoacetate, and inorganic salts. In a preferred embodiment, DMSO is used, a liquid that is non-toxic to cells at low concentrations. As a small molecule, DMSO freely permeates cells, and when combined with water, its freezing ability is modified, protecting intracellular organelles by preventing damage from ice formation. The addition of plasma (e.g., up to a concentration of 20–25%) can enhance the protective effect of DMSO. After the addition of DMSO, cells should be kept at 0–4°C until freezing, as DMSO concentrations of approximately 1% are toxic at temperatures above 4°C.

[0340] Different cryoprotectants (Rapatz, G., et al., 1968, Cryobiology 5(1):18-25) and different cell types have different optimal cooling rates (for example, for the effect of cooling rate on the survival of myeloid stem cells and their engraftment potential, see Rowe, AW and Rinfret, AP, 1962, Blood 20:636; Rowe, AW, 1966, Cryobiology 3(1):12-18; Lewis, JP, et al., 1967, Transfusion 7(1):17-32; and Mazur, P., 1970, Science 168:939-949). The heat of the fusion phase, in which water turns to ice, should be minimized. The cooling procedure can be performed, for example, by using a programmable freezer or a methanol bath procedure.

[0341] After deep freezing, the cells can be rapidly transferred to long-term cryogenic storage containers. In one embodiment, expanded HSC or IPS cells can be cryogenically stored in liquid nitrogen (-196°C) or its vapor (-165°C). Such storage is greatly facilitated by the use of highly efficient liquid nitrogen freezers, similar to large thermos containers, with ultra-low vacuum and internal ultra-insulation such that heat dissipation and nitrogen loss are minimized.

[0342] In certain embodiments, the cryopreservation procedure described in Current Protocols in Stem Cell Biology, 2007 (Mick Bhatia, et. al., ed., John Wiley and Sons, Inc.) is used, which is incorporated herein by reference. Typically, when cells (such as HSCs) on a 10 cm tissue culture plate reach approximately 50% confluence, the medium in the plate is aspirated and the cells are rinsed with phosphate-buffered saline. Adherent cells are then dissociated with 3 ml of 0.025% trypsin / 0.04% EDTA. The trypsin / EDTA is neutralized with 7 ml of medium, and the dissociated cells are collected by centrifugation at 200 × g for 2 minutes. The supernatant is aspirated, and the cell pellet is resuspended in 1.5 ml of medium. A 1 ml aliquot of 100% DMSO is added to the cell suspension and gently mixed. A 1 ml aliquot of this HSC suspension in DMSO is then dispensed into CRYULES in preparation for cryopreservation. Sterile storage CRYULES preferably have internal screw-on caps to allow for easy handling without contamination. Suitable racking systems are commercially available and can be used for cataloging, storing and retrieving individual specimens.

[0343] Considerations and procedures for the manipulation, cryopreservation and long-term storage of cells, particularly cells derived from bone marrow or peripheral blood, can be found, for example, in the following references (incorporated herein by reference): Gorin, NC, 1986, Clinics In Haematology 15(1):19-48; Bone-Marrow Conservation, Culture and Transplantation, Proceedings of a Panel, Moscow, Jul. 22-26, 1968, International Atomic Energy Agency, Vienna, pp. 107-186.

[0344] Other methods of cryopreservation of viable cells, or modifications thereof, are available and are contemplated for use (e.g., cold metal-minor techniques; Livesey, SA and Linner, JG, 1987, Nature 327:255; Linner, JG, et al., 1986, J. Histochem. Cytochem. 34(9):1123-1135; U.S. Pat. Nos. 4,199,022, 3,753,357, and 4,559,298, all of which are incorporated herein by reference in their entireties).

[0345] In some embodiments, frozen cells are thawed quickly (e.g., in a water bath maintained at 37°C-41°C) and then immediately cooled on ice. In particular, the cryogenic vial containing the frozen cells can be immersed up to its neck in a warm water bath; gentle rotation will ensure mixing of the cell suspension as it thaws and increase heat transfer from the warm water to the internal ice block. Once the ice has completely melted, the vial can be immediately placed back on ice.

[0346] In one embodiment, the thawing procedure after cryopreservation is described in Current Protocols in Stem Cell Biology, 2007 (Mick Bhatia, et al., ed., John Wiley and Sons, Inc.), which is incorporated herein by reference. Immediately after removing the cryogenic vial from the cryofreezer, roll the vial between your hands for 10-30 seconds until no frost forms on the outside of the vial. The vial is then held upright in a 37°C water bath until the contents are visibly thawed. The vial is then immersed in 95% ethanol or sprayed with 70% ethanol to kill microorganisms from the water bath and allowed to air dry in a sterile hood. The contents of the vial are then transferred using aseptic technique to a 10 cm sterile culture containing 9 ml of medium. The cells can then be cultured and further expanded in a 37°C, 5% humidified CO2 incubator.

[0347] It may be desirable to treat the cells to prevent clumping upon thawing. A variety of procedures can be used to prevent clumping before and / or after freezing, including, but not limited to, the addition of DNase (Spitzer, G., et al., 1980, Cancer 45:3075-3085), the addition of low molecular weight dextran and citrate, and the addition of hydroxyethyl starch (Stiff, PJ, et al., 1983, Cryobiology 20:17-24).

[0348] If cryoprotectant is toxic to humans, it should be removed before the therapeutic use of thawed cells.In the embodiment where DMSO is used as cryopreservation agent, since DMSO is not seriously toxic, it is preferable to omit this step to avoid cell loss.However, if removal of cryoprotectant is desired, removal is preferably achieved during thawing.

[0349] One way to remove the cryoprotectant is to dilute it to a concentration that is innocuous. This can be achieved by adding medium, followed, if necessary, by one or more centrifugation cycles to pellet the cells, removing the supernatant, and resuspending the cells. For example, the intracellular DMSO in thawed cells can be reduced to a level (less than 1%) that will not adversely affect the recovered cells. This is preferably done slowly to minimize the potentially damaging osmotic gradient that occurs during DMSO removal.

[0350] After removal of the cryoprotectant, cell counts (e.g., by use of a hemocytometer) and viability tests (e.g., by trypan blue dye exclusion; Kuchler, RJ 1977, Biochemical Methods in Cell Culture and Virology, Dowden, Hutchinson & Ross, Stroudsburg, Pa., pp. 18-19; 1964, Methods in Medical Research, Eisen, HN, et al., eds., Vol. 10, Year Book Medical Publishers, Inc., Chicago, pp. 39-47) can be performed to confirm cell viability.

[0351] In one embodiment, the thawed cells are tested by standard viability assays (e.g., trypan blue dye exclusion) and microbial sterility assays as described herein to confirm and / or determine their identity to the recipient.

[0352] While the present teachings are described in conjunction with various embodiments, it is not intended that the present teachings be limited to such embodiments. Rather, the present teachings encompass various modifications, variations, and equivalents, as will be appreciated by those skilled in the art.

[0353] Throughout this disclosure, various publications, patents and published patent specifications are referenced by an identifying citation. The disclosures of these publications, patents and published patent specifications are incorporated by reference into this disclosure in order to more fully describe the state of the art to which this invention pertains. [Example]

[0354] Example 1: Materials and Methods The sequences used in the following examples are summarized in Table 7.

[0355] cell Cryopreserved human PBMCs were used according to a protocol approved by the Cellectis IRB / IEC. PBMCs were cultured in X-vivo-15 medium (Lonza Group) containing IL-2 (Miltenyi Biotech) and human serum AB (Seralab). T cells were activated for 3 days using human T-activator CD3 / CD28 Dynabeads (Thermo Fisher Scientific) according to the supplier's protocol. Human hematopoietic stem cells (HSCs) were purchased from the New York Blood Center and cultured in HSC expansion medium (StemSpan SFEM II and StemSpan CD34+ Expansion Supplement, StemCell Technologies). HSCs were passaged every 3 days at 3.36E5 cells / ml.

[0356] TALE-nucleases and CRISPR TALEN refers to heterodimeric TALE-nucleases using Fok-1 as the nuclease domain, produced by Cellectis (8, rue de la Croix Jarry, 75013 Paris, France), as described by Voytas et al. in WO2011072246. TRAC and B2M TALEN mRNAs were generated according to previously described protocols (Poirot et al. 2015). The target sequences of TRAC and B2M TALENs were: TIFF0007750865000017.tif18144, in which two 17-bp recognition sites (uppercase letters) are separated by a 15-bp spacer.

[0357] HBB TALEN mRNA was generated using in vitro transcription using the NEB HiScribe ARCA (NEB) kit according to the manufacturer's protocol. The HBB TALEN target sequence was: TIFF0007750865000018.tif10152, where uppercase letters indicate the TALEN binding sequence and lowercase letters represent the spacer sequence.

[0358] The mRNA encoding CAS9 protein (SEQ ID NO: 246) was generated using the mMACHINE T7 Transcription Kit (Invitrogen AM1344). The sgRNA (SEQ ID NO: 246) targeting the first exon of the TCR-alpha constant region (TRAC) was synthesized by IDT.

[0359] Preparation of double-stranded DNA repair templates A plasmid containing the CAR matrix with homologous arms to the target site (SEQ ID NO: 220) was used as a PCR template. Phosphorothioate-modified primers were used to amplify the target region (SEQ ID NO: 221 and SEQ ID NO: 222). PCR reactions were performed using the PrimeSTAR Max Premix (TaKaRa) system according to the manufacturer's protocol. The PCR products were then purified with AMpure beads (Beckman Coulter) and eluted in ddH2O.

[0360] ssODN The ssODNs used in this study were custom synthesized by Integrate DNA Technology. The ssODN used to introduce a 20-bp insertion into the TRAC locus contains a 20-bp central random sequence flanked by 75-bp homology arms to the TRAC TALEN target site (SEQ ID NO: 240). Two ssODNs (SEQ ID NO: 237 and 238) were used to introduce point mutations into the HBB locus. The ssODNs had phosphothioate modifications at their ends.

[0361] Targeted integration of CAR constructs or 20 bp insertion in primary T cells Activated T cells were split into fresh complete medium and cultured in fresh medium for 6–24 h. T cells were transfected according to the following procedure. For TALEN mRNA transfection, cells were first de-beaded by magnetic separation (EasySep) and washed twice in Cytoporation buffer T (BTX Harvard Apparatus). Five million cells were then resuspended in Cytoporation buffer T. This cell suspension was mixed with mRNA encoding the TRAC TALEN at 1 μg mRNA per TALEN arm per million cells. Transfection was performed in a 0.4 cm gap cuvette (BTX Harvard Apparatus) using Pulse Agile technology, applying two 0.1 mS pulses at 3,000 V / cm, followed by four 0.2 mS pulses at 325 V / cm. The electroporated cells were then immediately transferred to a 12-well plate containing 2 mL of prewarmed X-vivo-15 serum-free medium and incubated at 37°C for 15 minutes. The cells were then incubated at 30°C for various times before a second transfection with dsDNA or ssODN repair templates. For dsDNA transfection for targeted integration, TALEN mRNA-transfected cells were harvested and washed once with warm PBS. Five million cells were then pelleted and resuspended in 100 μl of Lonza Human T cell buffer (Lonza, VPA-1002, Human T cell buffer 82 μl + Supplement 18 μl). The cells were mixed with 2 μg of dsDNA repair template and electroporated using a Lonza Nucleofector II. After electroporation, 500 μl of warm growth medium was added to a cuvette to dilute the electroporation buffer, and the mixture was then carefully transferred to 2 mL of prewarmed growth medium in a 12-well plate. To remove extracellular DNA, cell cultures were supplemented with 5 units / ml of benzonase.

[0362] For CRISPR-Cas9 transfection, cells were washed twice in Cytoporation buffer T (BTX Harvard Apparatus), and then 5 million cells were resuspended in Cytoporation buffer T. This cell suspension was mixed with 10 μg of mRNA encoding Cas9 and 10 μg of sgRNA targeting the TRAC locus (per million cells). Transfection was performed in a 0.4 cm gap cuvette (BTX Harvard Apparatus) using Pulse Agile technology by applying two 0.1 mS pulses at 3,000 V / cm, followed by four 0.2 mS pulses at 325 V / cm. The electroporated cells were then transferred to a 12-well plate containing 2 mL of prewarmed X-vivo-15 serum-free medium and incubated at 37°C for 15 minutes. The cells were then incubated at 37°C for various times before a second transfection with dsDNA encoding CD22CAR (SEQ ID NO:220). After incubation, CRISPR-Cas9-transfected cells were harvested and washed once with warm PBS. Five million cells were then pelleted and resuspended in 100 μl of Lonza Human T cell buffer (Lonza, VPA-1002, Human T cell buffer 82 μl + Supplement 18 μl). The cells were mixed with 2 μg of dsDNA repair template and electroporated using a Lonza Nucleofector II. After electroporation, 500 μl of warm growth medium was added to the cuvette to dilute the electroporation buffer, and the mixture was then carefully transferred to 2 ml of pre-warmed growth medium in a 12-well plate. To remove extracellular DNA, the cell culture was supplemented with 5 units / ml of benzonase.

[0363] For ssODN transfection, which allows for 20-bp insertion, TALEN mRNA-transfected cells were harvested and washed once with warm PBS. One million cells were then pelleted and resuspended in 20 μl of Lonza P3 buffer (Lonza, V4SP-3096). The cells were then mixed with 200 nmol of ssODN for electroporation in a Lonza 4D. After electroporation, 80 μl of warm growth medium was added to the cuvette to dilute the electroporation buffer, and the mixture was then carefully transferred to 0.5 ml of pre-warmed growth medium in a 48-well plate.

[0364] ssODN transfection into HSCs Before electroporation, CD34 + HSCs were expanded in HSC Expansion Medium for 5 days. 1E6 HSCs were harvested at 300g for 10 minutes and washed once in PBS. Cells were resuspended in BTXpress high performance buffer (Harvard Apparatus).

[0365] For cotransfection, 1E6 HSCs were electroporated with 10 μg / arm of TALENs along with ssODN1 or 2 (1000 pmol) using a BTX Pulse Agile (Harvard Apparatus). HSC expansion medium was added to the electroporated HSCs, and the cells were seeded into 24-well plates and incubated at 30°C for 20 hours. The cells were supplemented with additional HSC medium and transferred to 37°C. For the 20-hour delayed transfection, 10 μg / arm of TALENs was first electroporated into 1E6 HSCs, and the cells were incubated at 30°C for 20 hours. A second electroporation with 1000 pmol of either ssODN1 or ssODN2 was then performed. The cells subjected to the second transfection were then resuspended in HSC medium and allowed to recover overnight at 37°C before being supplemented with additional HSC medium.

[0366] Electroporation was performed using two pulses at 1000V and four pulses at 130V in a BTX Pulse Agile (BTX Harvard Apparatus).

[0367] gDNA extraction and qPCR Cells were harvested and washed once with PBS. Cell pellets were then subjected to gDNA extraction using Mag-Bind Blood & Tissue DNA HDQ kits (Omega Bio-Tek). For DSB detection, qPCR primers were designed to amplify the genomic sequence containing the TALEN target site, or primers (SEQ ID NO: 223 to SEQ ID NO: 230) were used for control genomic sequences distant from the TALEN target site. To determine the half-life of exogenous dsDNA, qPCR primers (SEQ ID NO: 231 and SEQ ID NO: 232) were designed to specifically amplify the CAR sequence, the insert template. qPCR reactions were set up using PowerUp SYBR Green Master Mix (Thermo Fisher, A25742) analyzed on a Bio-Rad CFX.

[0368] Western blot and flow cytometry To detect TALEN expression by Western blot, we used anti-RVD antibody and anti-rabbit secondary antibody (Cell Signally Technology) as described by Menger et al. [TALEN-Mediated Inactivation of PD-1 in Tumor-Reactive Lymphocytes Promotes Intratumoral T-cell Persistence and Rejection of Established Tumors Cancer. Res. (2016) 76(8):2087-2093]. ECL (Thermo Scientific) signals were detected with Li-COR.

[0369] To detect CD22CAR expression on the surface of edited T cells, T cells were stained using CD22Fc recombinant protein and an anti-Fcγ secondary antibody conjugated with a PE fluorophore, and then analyzed by MacsQuant (Miltenyi Biotech) to detect PE-positive cells.

[0370] Deep sequencing indel analysis PCR amplification spanning the TRAC or B2M target was performed on gDNA collected at the indicated time points post-transfection using primers (SEQ ID NO: 233 to SEQ ID NO: 236). Purified PCR products were sequenced using an Illumina method (Miseq 2x250 nano V2). Illumina generated at least 150,000 sequences per PCR product, and sequences were analyzed for the presence of site-specific mutations.

[0371] Example 2. Understanding the kinetics of TALEN-induced double-strand breaks TALENs are TALE-nucleases designed by Cellectis (8, rue de la Croix Jarry, 75013 PARIS) that use the Fok1 nuclease catalytic domain. This is an engineered nuclease format widely used in many fields for precise and specific genome editing, particularly for genetically engineering "off-the-shelf" CAR-T cells. However, little is known about the kinetics of TALE-nuclease-induced double-strand break (DSB) generation and DSB repair processes. Here, we measured the kinetics of DSB generation and repair at a single locus in human T cells and confirmed that the abundance of unbound DSBs was greatest 20 hours after transfection of TALEN mRNA into cells. Based on our understanding of the kinetics of TALEN-induced DSBs, we designed a two-step transfection procedure that significantly improved the targeted integration rate using dsDNA or ssODN as the repair DNA template.

[0372] To understand the timing of events following TALEN mRNA transfection, gene editing was performed by transfecting activated human T cells with the TALEN mRNA from Example 1. TALEN-transfected cells were collected at different time points shown in Figure 1A for various analyses: TALEN protein expression, genomic DNA cleavage, and TALEN-induced double-strand break (DSB) repair.

[0373] TALEN protein expression To understand and characterize the various steps in the gene editing process, we first measured TALEN protein expression after mRNA transfection. Cells were harvested at different time points after TRAC TALEN mRNA transfection for whole-cell lysate extraction. Lysates were then separated by SDS-PAGE, and specific TALEN protein expression was detected by Western blotting using an anti-RVD antibody that specifically recognizes the DNA-binding domain of TALENs (Figure 1B). Results showed that TALEN protein was detectable by immunoblotting 4 hours after TALEN mRNA transfection. TALEN protein levels continued to accumulate up to 20 hours post-transfection. At 24 hours post-transfection, TALEN protein levels declined, and at 48 hours, protein levels were below detectable levels, likely due to combined degradation of the mRNA template and the TALEN protein itself.

[0374] cutting dynamics In such a TALEN-mediated T cell editing system, in which TALENs enter cells as mRNA, TALEN proteins take time to accumulate to maximum levels and only begin to disappear after 20 hours. Because double-strand break (DSB) creation is related to nuclease activity, we hypothesized that TALEN protein accumulation and degradation would affect the kinetics of DSB generation. Therefore, we investigated the kinetics of TALEN-mediated unbound DSB creation. We designed a primer pair that amplifies + / - 100 bp spanning the TALEN cleavage site and another primer pair that amplifies approximately -300 to -200 bp upstream of the TALEN cleavage site (Figure 1C). With this design, we hypothesized that as TALENs generate DSBs at their target sites, the abundance of intact DNA spanning the TALEN cleavage site would decrease, while the DNA stretch upstream of the cleavage site would remain largely unchanged. By comparing the relative abundance of the "cross" amplicon and the "upstream" amplicon, one could determine changes in the intact "cross" amplicon and, conversely, an increase in the free ends of TALEN-cleaved DNA.

[0375] Genomic DNA (gDNA) from cells treated with TALENs targeting either the TRAC or B2M locus was extracted at various time points after transfection and subjected to qPCR analysis. Our data show that transfection of either of the two TALENs reduced the abundance of "cross" amplicons, reaching a minimum around 20 hours, indicating that at this time point, the majority of cells had unbound DSB DNA ends at the TALEN target site, ready for repair (Figure 1D).

[0376] DSB repair kinetics To further characterize the NHEJ repair kinetics for TALEN-induced DSBs, we used targeted deep sequencing to determine the rate of indel accumulation. Cells transfected with either the TRAC TALEN or the B2M TALEN were harvested at various time points up to 72 hours after TALEN mRNA electroporation. After gDNA extraction, a ~300 bp region surrounding the TALEN target site was amplified by PCR, and the resulting products were subjected to high-throughput sequencing to determine the intact and indel fractions. The results (Figure 2A) show a gradual accumulation of indels over time, indicating that DSBs were introduced and eventually repaired by mutation. Toward the end of the time course, indel frequency plateaued at around 90% for both TALENs.

[0377] The sigmoidal appearance of the measured indel time curves suggests a delayed onset of indel accumulation, which is associated with the delayed timing of TALEN protein expression at early time points. These curves also suggest that the indel accumulation rate was maximal between 10 and 20 hours after TALEN mRNA transfection. This phenomenon may be associated with the presence of a higher amount of TALEN protein in the cells, which leads to higher nuclease activity.

[0378] DSB signatures over time We further investigated the time course of deletion size within the indel pattern. Our sequencing data revealed that while the majority of species were small deletions (<5 bp) at earlier time points (<8 h), the abundance of small deletions decreased and larger deletions began to appear at later time points (Figure 2B). This shift toward larger deletions is due to TALENs' ability to accept smaller (<5 bp) deletions in the spacer region and "recut" them. Thus, small deletions created at early time points were likely to subsequently recut, generating larger deletions. After the deletion size became large enough to strongly affect TALEN activity or even disrupt TALEN binding sequences, recutting was completely suppressed. Indeed, we observed an accumulation of larger deletions at later time points. Additionally, the amount of TALEN protein was undetectable 48 h after transfection, as previously shown in Figure 1B, suggesting that TALEN nuclease activity was at its lowest at 48 h. As expected, the data showed that there was no significant difference in the deletion size observed between 48 and 72 hours.

[0379] Taken together, the data suggest that once a DSB is generated and repaired by the NHEJ pathway to produce a small deletion event, it can be further cut by TALEN proteins still present in the cell. Once a DSB is repaired by NHEJ to produce a large deletion event, the repaired sequence can no longer be recut by TALENs.

[0380] Example 3: Optimization of targeted integration in T cells ssODN-mediated gene insertion The integration of exogenous DNA molecules into cell genome requires that cells use HDR pathway, which is less efficient than DSB repair, instead of NHEJ.To carry out gene insertion, TALEN is used to create DSB at desired gene locus, and the gene of interest is precisely integrated into this gene locus.To improve targeted gene insertion, knowledge of TALEN behavior and DSB repair kinetics is used.

[0381] First, we used short single-stranded DNA (ssODN) as a repair DNA donor template to direct targeted insertion. Introduction of short single-stranded oligodeoxynucleotide (ssODN) HDR templates does not cause significant T cell toxicity.

[0382] To insert a 20-bp sequence specific to the TRAC locus in edited cells (Figure 3A), we designed a 170-bp ssODN containing 70-bp homology arms to the TRAC locus at each of the 5' and 3' ends. A 20-bp scrambled sequence was inserted in the center of the ssODN as a spacer sequence between the two half TALEN binding sequences.

[0383] ssODN has been shown to have a half-life of 1.5 hours after electroporation into cells. The rapid degradation of ssODN within cells likely means that the time frame for its effective command of homologous recombination is relatively narrow. Our hypothesis is that the best time to deliver DNA repair / donor templates would be when most cells have the TALEN target site "opened." To test this hypothesis, we electroporated ssODN into cells at different time points (0, 3, 6, 16, 20, or 24 hours) after transfection with TRAC TALEN mRNA.

[0384] Five days after transfection, cells were harvested for genomic DNA extraction. The TRAC locus sequence was amplified and subjected to deep sequencing analysis to detect the 20-bp insertion efficiency. Results showed that the 20-bp exogenous sequence knock-in rate increased as the timing of ssODN transfection was delayed. The highest integration of the 20-bp exogenous sequence at the TRAC TALEN-edited locus was observed when mRNA was transfected 16–20 h later (Figure 3B and C), with the KI rate fluctuating between 30% and 46% at 16 h (Figure 3B). On the other hand, when the ssODN template was transfected immediately after TALEN transfection, the insertion rate was only around 10–15%. The fold increase in the KI rate was significantly higher at 16 h, approximately threefold higher than at 0 h (Figure 3C). This observation supported the hypothesis that delivering the ssODN template at 16 h, when most of the cells have unbound TALEN cut sites, would result in the highest target insertion rate. The results also suggested that the timing of delivery of the repair template was important for achieving high KI frequencies in TALEN-mediated gene insertion experiments.

[0385] Large knock-in optimization We investigated the insertion of large DNA templates to introduce functional genes into specific genomic loci. Compared with random gene insertion (retrovirus-mediated), targeted gene insertion can avoid clonal expansion, oncogenic transformation, variable transgene expression, and transcriptional silencing. Unlike short single-stranded oligodeoxynucleotides (ssODNs), large linear double-stranded (dsDNA) HDR templates were toxic to primary cells at high concentrations. One of the main challenges of gene insertion is to balance the toxicity caused by high concentrations of dsDNA with insertion efficiency. To place CAR expression under TCR alpha regulation, we designed a DNA repair template to integrate an anti-CD22 CAR expression cassette into the TRAC locus using a T2A self-cleaving element while maintaining the open reading frame of the TCR alpha gene (Figure 4A). The dsDNA repair template obtained by PCR in Example 1 has a total size of 2.5 kb.

[0386] First, we evaluated the half-life of dsDNA templates in transfected T cells. PCR products were delivered into TRAC TALEN-treated T cells by electroporation. The amount of PCR product in the cells at various time points after electroporation was determined by qPCR. The results, shown in Figure 4B, show that the linear dsDNA (PCR product) has a short half-life of less than 1 hour (T = 54 min).

[0387] As previously demonstrated, 20 hours after TALEN transfection, the majority of cells have unbound DSBs at the TALEN cleavage site. Therefore, we hypothesized that transfecting dsDNA 20 hours after TALEN mRNA transfection would result in the highest target integration ratio.

[0388] A dsDNA template encoding CD22CAR was transfected either together with TRAC TALEN mRNA or at different time points after TALEN mRNA transfection (Figure 4C). Cells were then cultured for 5 days, after which flow cytometry analysis was performed for cell surface CD22CAR expression. The results demonstrated that dsDNA transfection performed 20 hours after TALEN mRNA transfection resulted in the highest CD22CAR integration rate (Figure 4D). Importantly, this transfection procedure did not cause increased toxicity in edited T cells (Figure 5).

[0389] We also evaluated CRISPR-Cas9-mediated targeted integration. The dsDNA template encoding CD22CAR was transfected at 0 hours (cells seeded after CRISPR-Cas9 electroporation were immediately harvested and transfected with dsDNA for the second time) or at different designated time points after transfection with Cas9 mRNA and sgRNA. The cells were then cultured for 5 days, after which flow cytometry analysis was performed on the CD22CAR expression on the cell surface. Our results demonstrated that dsDNA transfection performed 16 hours after transfection with Cas9 mRNA and gRNA resulted in the highest CD22CAR integration rate (Figure 6).

[0390] Example 4: Optimization of targeted integration in HSCs ssODN-mediated knock-in is particularly attractive because it can be used to introduce single base pair substitutions into the genome. Because point mutations represent the largest class of known pathogenic genetic variants, the primary application of ssODN-mediated single base pair mutations is in the study or treatment of disease-associated point mutations.

[0391] Point mutations were introduced into HSCs using ssODNs and TALENs. The mutations were designed to introduce sickle mutations into the hemoglobin subunit beta (HBB) gene. In the experiment, we compared the mutagenesis efficiency using two different ssODNs: ssODN1 and ssODN2 (SEQ ID NO: 237 and SEQ ID NO: 238) (see Figure 7A). Additionally, we compared the mutagenesis efficiency when HSCs were transfected with ssODNs at different time points. In the co-transfection (co-TF) condition, ssODNs were mixed with HBB TALEN mRNA and simultaneously electroporated into HSCs. In the 20-hour delay condition, TALEN mRNA was first electroporated into HSCs, followed by a second transfection delivering ssODNs 20 hours after mRNA transfection. Cells were then harvested to assess the proportion of the genome displaying the desired point mutation. The results showed that a 20-hour delay in ssODN1 transfection was sufficient to introduce point mutations in up to 10% of alleles (Figure 7B). Importantly, delayed delivery of ssODN1 or ssODN2 increased the point mutation rate by 30% or more than threefold, respectively (Figure 7C).

[0392] This result supports our previous observation that delayed delivery of DNA repair templates improved their targeted integration rate. Introducing point mutations using this method has great potential for curing many diseases caused by point mutations.

[0393] Table 7: Polynucleotide and polypeptide sequences used in the examples TIFF0007750865000019.tif200154TIFF0007750865000020.tif215154TIFF0007750865000021.tif220154TIFF00077508650 00022.tif223154TIFF0007750865000023.tif219154TIFF0007750865000024.tif223154TIFF0007750865000025.tif191154

[0394] References TIFF0007750865000026.tif197159TIFF0007750865000027.tif167160

Claims

1. 1. An ex vivo method for targeted insertion of an exogenous sequence at a genomic locus of an immune cell, wherein the insertion is induced by a sequence-specific endonuclease having cleavage activity at the locus, and wherein a DNA template comprising the exogenous sequence is introduced into the cell 5 to 20 hours after transfection of the sequence-specific endonuclease, and wherein the sequence-specific endonuclease has cleavage activity at the locus for at least 5 hours prior to introduction of the DNA template comprising the exogenous sequence into the cell.

2. 10. The ex vivo method of claim 1, wherein said sequence-specific endonuclease has cleavage activity for at least 15 hours before said DNA template is introduced into said cell.

3. The ex vivo method of claim 2, wherein the sequence-specific endonuclease has cleavage activity for at least 18 hours before the DNA template is introduced into the cell.

4. At least the following steps: (a) transfecting the cell with a sequence-specific endonuclease polypeptide having cleavage activity at a genomic locus; (b) 5 to 20 hours after the transfection step of (a), introducing into the cells a DNA template comprising an exogenous sequence to be inserted into the locus by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ; and (c) culturing and selecting cells in which the exogenous sequence has been inserted into the locus; 4. The ex vivo method of claim 1 or 3, comprising:

5. At least the following steps: (a) transfecting the cell with a sequence-specific endonuclease polynucleotide having cleavage activity at a genomic locus; (b) 10 to 20 hours after the transfection step of (a), introducing into the cells a DNA template comprising an exogenous sequence to be inserted into the locus by homologous recombination, NHEJ, HDR, MMEJ, or HMEJ; and (c) culturing and selecting cells in which the exogenous sequence has been inserted into the locus; 4. The ex vivo method of claim 1 or 3, wherein the sequence-specific endonuclease polynucleotide is transfected as mRNA.

6. The ex vivo method of any one of claims 1 to 5, wherein the endonuclease is a TALE-nuclease.

7. The ex vivo method of any one of claims 1 to 5, wherein the endonuclease is an RNA-guided endonuclease.

8. The ex vivo method of claim 7, wherein the RNA-guided endonuclease is Cas9 or Cpf1.

9. The ex vivo method of any one of claims 1 to 8, wherein the exogenous sequence is inserted into the locus by homologous recombination.

10. The ex vivo method of any one of claims 1 to 9, wherein the DNA template is a single-stranded polynucleotide.

11. The ex vivo method of any one of claims 1 to 10, wherein the DNA template is a short single-stranded oligodeoxynucleotide (ssODN).

12. The ex vivo method of claim 11, wherein the ssODN has homology arms consisting of 50 to 200 bp.

13. The ex vivo method described in claim 12, wherein the ssODN has homologous arms consisting of 80 to 150 bp.

14. The ex vivo method described in claim 13, wherein the ssODN has homologous arms consisting of 90 to 120 bp.

15. 15. The ex vivo method according to any one of claims 1 to 14, comprising at least two transfection steps, wherein a first transfection step introduces the sequence-specific endonuclease into the cells, and a second transfection step introduces the DNA template containing the exogenous sequence to be inserted, wherein the second transfection step is by electroporation.

16. The ex vivo method of any one of claims 1 to 15, wherein the immune cells are primary cells.

17. The ex vivo method of any one of claims 1 to 16, wherein the immune cells are HSCs or their progeny.

18. The ex vivo method of claim 17, wherein the immune cells are T cells or NK cells.

19. 19. The ex vivo method of any one of claims 1 to 18, wherein the immune cells are primary T cells selected from primary T cells from a patient, tumor infiltrating lymphocytes (TILs) from a patient, and primary T cells from a donor.

20. The following steps: - performing targeted insertion into primary immune cells previously obtained from a donor or patient or derived from human iPS or hES cells, said targeted insertion being performed by an ex vivo method according to any one of claims 1 to 19; - purifying and freezing the cells for later use as a therapeutic composition; 10. An ex vivo method for producing therapeutic cells, comprising:

21. 21. The ex vivo method of any one of claims 1 to 20, which does not include a step involving a viral vector.

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