Methods and compositions for the production of nucleoside triphosphates and ribonucleic acids
Biosynthetic pathways using low-cost substrates and enzymes like polyphosphate kinase improve the efficiency and reduce costs in producing NTPs and RNA, addressing the high-cost challenges in commercial RNA synthesis.
Patent Information
- Application Number
- JP2020520760
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-10-11
- Filing Date
- 2018-10-11
- Publication Date
- 2025-12-25
- Estimated Expiration
- 2038-10-11
AI Technical Summary
The high cost of starting materials and reaction components hinders the low-cost production of ribonucleic acid (RNA) on a commercial scale, particularly due to the expense of nucleoside triphosphates (NTPs) and other components required for RNA synthesis.
Utilization of biosynthetic pathways that incorporate low-cost substrates such as cellular RNA, nucleobases, nucleoside monophosphates (NMPs), and nucleoside diphosphates (NDPs) along with recombinant and endogenous enzymes like polyphosphate kinase and polymerases, minimizing undesired enzymatic activity to enhance process efficiency and yield.
This approach enables cost-effective production of NTPs and RNA by reducing the reliance on expensive starting materials and enhancing the efficiency of the production process.
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Abstract
Description
[Technical Field]
[0001] Related Applications This application claims the benefit under 35 U.S.C. § 119(e) of U.S. Provisional Application No. 62 / 571,071, filed October 11, 2017, which is incorporated herein by reference in its entirety. [Background technology]
[0002] background Ribonucleic acid (RNA) contains repeating units of ribonucleotides and plays a role in important cellular processes, including gene expression and protein synthesis. Therefore, RNA is an attractive target for modulating fundamental cellular processes (e.g., RNA vaccines that induce cellular immune responses). Low-cost production of RNA on a commercial scale (e.g., grams to kilograms) is challenging, however, due in part to the cost of starting materials (e.g., nucleoside triphosphates (NTPs)) and reaction components (e.g., DNA templates and polymerases). Providing high-quality RNA on a commercially reasonable scale requires cost-efficient production of both NTPs and RNA. Summary of the Invention
[0003] Abstract Provided herein are systems, methods, compositions (e.g., cells, cell lysates, reagents, and reaction mixtures) and kits for the low-cost production (biosynthesis) of NTPs and / or RNA using biosynthetic pathways developed to utilize low-cost substrates (e.g., cellular RNA, nucleobases, nucleosides, nucleoside monophosphates (NMPs), and / or nucleoside diphosphates (NDPs)), recombinant and / or endogenous enzymes (e.g., kinases and / or polymerases), and energy sources (e.g., NTPs, polyphosphates, and / or pyrophosphates). NTP and / or RNA production is, in some cases, achieved using in vitro and / or cell-free lysate systems designed to minimize (e.g., reduce, inhibit, and / or eliminate) undesired enzymatic activity, thereby increasing process efficiency and yield of the desired end product.
[0004] The biosynthetic pathways described herein typically utilize polyphosphate kinase and polyphosphate as alternatives to endogenous pathway enzymes and phosphate sources. Thus, some aspects of the present disclosure provide methods and compositions for producing NTPs, comprising incubating an NDP (e.g., ADP, CDP, GDP, and / or UDP), a polyphosphate kinase (e.g., PPK2), and polyphosphate (e.g., hexametaphosphate) in a reaction mixture under conditions suitable for the production of NTPs. As shown in Figure 2A, the PPK transfers phosphate from polyphosphate to ADP, CDP, GDP, and UDP, resulting in the production of ATP, CTP, GDP, and UTP. In some cases, the reaction mixture further comprises an NDP kinase (e.g., ndk).
[0005] Other aspects of the present disclosure provide systems, methods, compositions, and kits for producing NTPs, which include incubating an NMP (e.g., a 5'-NMP, such as 5'-AMP, 5'-CMP, 5'-GMP, and / or 5'-UMP) polyphosphate kinase and polyphosphate in a reaction mixture under conditions suitable for producing NTPs. In some cases, the reaction mixture further includes an NMP kinase or an NDP kinase (e.g., ndk). In some cases, the reaction mixture further includes an NMP kinase (e.g., adk, cmk, gmk, and / or pyrH) and an NDP kinase (e.g., ndk).
[0006] Still other aspects of the present disclosure provide systems, methods, compositions, and kits for producing NTPs, which include incubating a nucleoside (e.g., adenosine, cytidine, guanosine, and / or uridine), a polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for producing NTPs. In some cases, the reaction mixture further includes a nucleoside kinase, an NMP kinase, or an NDP kinase. In some cases, the reaction mixture further includes a nucleoside kinase, an NMP kinase, and an NDP kinase.
[0007] Further aspects of the present disclosure provide systems, methods, compositions, and kits for producing NTPs, which include incubating a nucleobase (e.g., adenine, cytosine, guanine, and / or uracil), phosphoribosyltransferase, phosphoribosylpyrophosphate, polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for producing NTPs. In some cases, the reaction mixture further includes a nucleoside kinase, an NMP kinase, or an NDP kinase. In some cases, the reaction mixture further includes a nucleoside kinase, an NMP kinase, and an NDP kinase.
[0008] In some cases, starting materials for the biosynthesis of NTP (e.g., NMP, NDP, and / or nucleosides) are produced from cellular RNA.Accordingly, some aspects of the present disclosure provide systems, methods, compositions, and kits for producing NTP, which include: (a) incubating cellular RNA (e.g., obtained from unicellular or multicellular organisms), polynucleotide phosphorylase (PNPase) and inorganic phosphate in a reaction mixture under conditions suitable for the production of nucleoside diphosphate (NDP); (b) removing PNPase (and optionally removing other undesirable enzyme activity); and (c) incubating NDP, polyphosphate kinase, and polyphosphate in the resulting reaction mixture under conditions suitable for the production of NTP.In some cases, the reaction mixture of step (c) further comprises NDP kinase. Alternatively, the method may include (a) incubating cellular ribonucleic acid (RNA), PNPase, inorganic phosphate, polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for the production of nucleoside diphosphates (optionally wherein the reaction mixture further comprises an NDP kinase); (b) removing PNPase; and (c) incubating the reaction mixture under conditions suitable for the production of NTPs. In some cases, the required pathway enzymes (e.g., polyphosphate kinase and / or NDP kinase) can withstand removal conditions (e.g., exposure to high temperature or chemical inhibitors) such that they retain their activity (e.g., at least 50% of their activity) after exposure to conditions used to remove (e.g., reduce, inhibit, and / or eliminate) PNPase.
[0009] Other aspects of the present disclosure provide systems, methods, compositions, and kits for producing NTPs, which include: (a) incubating cellular RNA and a ribonuclease (RNase, e.g., RNase R or nuclease P1) in a first reaction mixture under conditions suitable for the production of NMPs (e.g., 5'-NMPs); (b) removing RNase (and optionally other undesirable enzymatic activity); and (c) incubating NMPs, polyphosphate kinase, and polyphosphate in the resulting reaction mixture under conditions suitable for the production of NTPs. In some cases, the reaction mixture of step (c) further comprises an NMP kinase, an NDP kinase, or both an NMP kinase and an NDP kinase. Alternatively, the method may include: (a) incubating cellular RNA, RNase, polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for the production of NMPs (e.g., 5'-NMPs); (b) removing RNase; and (c) incubating the reaction mixture under conditions suitable for the production of NTPs.
[0010] In some cases, the NTP produced herein is used to produce RNA (such as mRNA or double-stranded RNA).This can be achieved, for example, by adding DNA template and polymerase (such as T7 RNA polymerase) to any of the reaction mixtures used to produce NTP as described herein.Alternatively, NTP can be isolated and combined with DNA template and polymerase in a separate reaction mixture to produce RNA.Therefore, the present disclosure provides methods and compositions for producing RNA.
[0011] In any of the biosynthetic pathways described herein, the nucleobase, nucleoside, NMP, NDP, or NTP, when used as a starting substrate, may be chemically synthesized, be the product of fermentation, or be produced by other means. The polyphosphate kinase used in the systems, reaction mixtures, and methods described herein can be selected from any of the polyphosphate kinases listed in Tables 2 or 12. In some cases, the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. The polyphosphate can be any polyphosphate that serves as a substrate for the pathway enzymes. In some cases, the polyphosphate is hexametaphosphate.
[0012] In embodiments in which cellular RNA is used, the cellular RNA includes, for example, ribosomal RNA, messenger RNA, and / or transfer RNA. The cellular RNA can be from a unicellular organism (e.g., a bacterium or yeast) or a multicellular organism (e.g., a plant). Biosynthetic pathway enzymes useful in the present disclosure may be obtained, for example, from (at least one) cell lysate prepared (isolated and / or purified) from cells (e.g., engineered cells) expressing pathway enzymes (e.g., nucleases (such as RNases and / or PNPases), polyphosphate kinase, NMP kinase, NDP kinase, and / or polymerase). Exemplary methods for preparing these cell lysates are described herein. Alternatively, the reaction mixture may include a cell lysate (a single cell lysate or a mixture of cell lysates) prepared from cells (e.g., engineered cells) expressing the pathway enzymes. That is, the complete reaction may be carried out in a cell lysate or a mixture of cell lysates containing recombinant and / or endogenous enzymes of the pathway, as well as other reaction components (e.g., polyphosphate) required for the production of NTPs. In some cases, (at least one) purified pathway enzyme is added to the reaction mixture.
[0013] For cell lysates or enzyme-containing reaction mixtures obtained from cell lysates, it may be advantageous to remove undesired native enzyme activity using any of the removal methods described herein.Undesired native enzyme activity includes, for example, phosphatases, nucleases, proteases, deaminases, oxidoreductases, and hydrolases.In some cases, native enzyme activity is removed through genetic modification, enzyme secretion from cells, localization (e.g., periplasmic targeting), and / or protease targeting.In other embodiments, native enzyme activity is removed through temperature, pH, salt, detergent, alcohol or other solvents, and / or chemical inhibitors.In still other embodiments, native enzyme activity is removed through separation, precipitation, filtration, capture, and / or chromatography.
[0014] The details of certain aspects of the invention are set forth in the accompanying examples, drawings, and detailed description. Other features, objects, and advantages of the invention will be apparent from the description and claims. [Brief explanation of the drawings]
[0015] [Figure 1] Figure 1A shows a biosynthetic pathway for the production of nucleoside triphosphates (NTPs) and downstream ribonucleic acid (RNA) using nucleotides as starting materials. Figure 1B shows an example of a high-energy phosphate strategy, in which polyphosphate is supplied to the reaction mixture. Figure 1C shows an example of a further high-energy phosphate strategy.
[0016] [Figures 2A-2D]Figure 2A shows a biosynthetic pathway for the production of NTPs and downstream RNAs using nucleoside diphosphates (NDPs) as starting materials. Figure 2B shows a biosynthetic pathway for the production of NTPs and downstream RNAs using 5'-nucleoside monophosphates (5'-NMPs) as starting materials. Figure 2C shows a biosynthetic pathway for the production of NTPs and downstream RNAs using nucleosides as starting materials. Figure 2D shows a biosynthetic pathway for the production of NTPs and downstream RNAs using nucleobases as starting materials. [Figure 2E] FIG. 2E shows the biosynthetic pathway for the production of NTPs and downstream RNA using nucleobases and ribose as starting materials.
[0017] [Figure 3A] Figure 3A shows a biosynthetic pathway for the production of NTPs and downstream RNAs using cellular RNA as a starting material. In this pathway, polynucleotide phosphorylase is used to degrade cellular RNA into NDPs. Figure 3B shows a biosynthetic pathway for the production of NTPs and downstream RNAs using cellular RNA as a starting material. In this pathway, ribonuclease is used to degrade cellular RNA into NMPs.
[0018] [Figure 4A] Figure 4A shows a biosynthetic pathway for the production of NTPs and downstream RNAs that uses a polyphosphate kinase (e.g., PPK2) and an ATP / ADP-dependent kinase (e.g., an NMP kinase such as adk, cmk, gmk, and / or pyrH, and / or an NDP kinase such as ndk).
[0019] [Figure 5] FIG. 5 shows the biosynthetic pathway for the production of RNA starting from 5′-NMP. [Figure 6]Figure 6 shows a biosynthetic pathway for the production of RNA starting from cellular RNA. The schematic shows an example where a template, kinase, and polymerase are added during the RNA production reaction.
[0020] [Figure 7] 7 shows a biosynthetic pathway for the production of RNA starting from cellular RNA. The schematic shows an example, where a template may be added during the depolymerization phase or the RNA production phase, a kinase may be added during the depolymerization phase or the RNA production phase, and a polymerase may be added during the depolymerization phase or the RNA production phase.
[0021] [Figure 8A] Figure 8A shows a graph of acid-soluble nucleotides (mM) produced over time during depolymerization of RNA from E. coli lysate using overexpressed RNase R. Acid-soluble nucleotides were measured by UV absorbance. [Figure 8B] Figure 8B shows an agarose gel of RNA products generated in reactions containing RNA polymerase and NMP generated during depolymerization (-NMP) or purified NMP (+NMP, 4 mM each). Abbreviations: ≈2log: 2-log DNA ladder (New England Biolabs), NMP: 5'-NMP, RNA Pol: equimolar mixture of thermostable T7 RNA polymerase, Template 1: linear DNA template, Template 2: plasmid DNA template.
[0022] [Figure 9A] Figure 9A shows a graph of acid-soluble nucleotides (mM) produced over time during depolymerization of purified RNA using 1 mg / mL purified RNase R. Acid-soluble nucleotides are measured by UV absorbance. [Figure 9B]Figure 9B shows an agarose gel of RNA products generated during reactions containing RNA polymerase and NMP generated by depolymerization of purified RNA. As a negative control, reactions were performed in the absence of RNA polymerase. Abbreviations: 2log: 2-log DNA ladder (New England Biolabs); NMP: equimolar mixture of 5'-nucleoside monophosphates; RNA Pol: thermostable T7 RNA polymerase; Template 1: linear DNA template; Template 2: plasmid DNA template.
[0023] [Figure 10] Figure 10 shows an agarose gel of RNA products generated by cell-free RNA synthesis using wild-type polymerase (W) or a thermostable polymerase mutant (T) at 37°C. Abbreviations: ≈2log: 2-log DNA ladder (New England Biolabs), W: wild-type T7 RNA polymerase (New England Biolabs), T: thermostable T7 RNA polymerase, Template 1: linear DNA template, Template 2: plasmid DNA template.
[0024] [Figure 11A] FIG. 11A shows a plot of the response factor (calculated as the ratio of the area of the dsRNA of interest to the area of a commercially available dsRNA internal standard) for reactions containing either DgPPK2 as the sole kinase or the five-enzyme lysate system. [Figure 11B] FIG. 11B shows HPLC chromatograms of dsRNA products generated in reactions containing DgPPK2 lysate, the five-enzyme lysate system, and a negative control without T7 RNA polymerase.
[0025] [Figure 12A] Figure 12A shows a graph of acid-soluble nucleotides (mM) produced over time during depolymerization of various RNA sources with purified RNase R or nuclease P1. Acid-soluble nucleotides were measured by UV absorbance. [Figure 12B]Figure 12B shows a graph of the percentage of available 5'-NMP generated over time during depolymerization of RNA from E. coli or yeast using nuclease P1. The percentage of available 5'-NMP was determined by LC-MS.
[0026] [Figure 13] Figure 13 shows a plot of the nucleomic profile for RNA depolymerization of lysate from GL17-109 over a range of temperatures. The cumulative concentrations of 20 analytes are shown. Nucleosides, shown in a white dot pattern, were minimally produced. Data was collected at 50°C but is not shown. [Figure 14] 14 is a schematic diagram of the enzymatic pathway for the production of ATP from pyrophosphate through the cyclic phosphorylation of acetate. Abbreviations are as follows: AcK1 = first acetate kinase, AcK2 = second acetate kinase, PPi = inorganic pyrophosphate, Pi = inorganic phosphate, ATP = adenosine triphosphate, ADP = adenosine diphosphate, and acetyl-P = acetyl-phosphate.
[0027] [Figure 15] Figures 15A-15B are schematic diagrams of the enzymatic pathway for the production of ATP from citrate. Figure 15A depicts the three enzymatic reactions for ATP production from citrate and pyrophosphate. Figure 15B depicts the overall chemical reaction. Abbreviations are as follows: PPi = inorganic pyrophosphate, PEP = phosphoenolpyruvate, CO = carbon dioxide, Pi = inorganic phosphate, ATP = adenosine triphosphate, and AMP = adenosine monophosphate.
[0028] [Figure 16] Figure 16 is a schematic diagram of the enzymatic pathway for the production of ATP from sulfite. Abbreviations are as follows: ATP = adenosine triphosphate, AMP = adenosine monophosphate, APS = adenosine 5'-phosphosulfate, and PPi = inorganic pyrophosphate.
[0029] [Figure 17] FIG. 17 is a graph showing that cell-free synthesis of dsRNA results in similar product titers regardless of the nucleotide source. [Figure 18] FIG. 18 is a graph showing that cell-free synthesis of dsRNA results in comparable product titers with wild-type and thermostable mutant RNA polymerases at mesophilic reaction temperatures.
[0030] [Figure 19] Figure 19 is a graph showing that cell-free synthesis of NTPs results in similar NTP titers after 1 hour of incubation at 48°C, regardless of the nucleotide source. For each source of nucleotide (cellular RNA, purified NDP, or purified NDP), an amount of substrate sufficient to provide approximately 4 mM of each nucleotide was added to the reaction. For example, reactions with NDP contained 4 mM each of ADP, CDP, GDP, and UDP. DETAILED DESCRIPTION OF THE INVENTION
[0031] Detailed Description The present disclosure, in some aspects, provides biosynthetic pathways for the production of NTPs and / or RNA that utilize cost-effective reaction components, e.g., cellular RNA substrates or monomeric substrates, e.g., nucleobases, nucleosides, NMPs or NDPs, recombinant and / or purified pathway enzymes (e.g., phosphoribosyltransferases, nucleoside phosphorylases, ribokinases, phosphopentomutases, nucleases, polyphosphate kinases, NMP kinases, NDP kinases, nucleoside kinases, RNA polymerases), sources of high-energy phosphate (e.g., polyphosphate), and / or DNA templates.
[0032] Reaction Components Cellular RNA. Cellular RNA includes, for example, messenger RNA (mRNA), transfer RNA (tRNA), and ribosomal RNA (rRNA) obtained from cellular material (biomass). Cellular RNA may be obtained from any source of cellular material, including, but not limited to, unicellular organisms (e.g., bacteria and yeast) and multicellular organisms (e.g., plants and animals), from yeast or from process waste streams, and may be, for example, cellular RNA obtained from lysates expressing enzymes (e.g., kinases). Nucleobases. Nucleobases are the nitrogenous base building blocks of nucleosides or nucleotides. Nucleobases serve as the basic units of the genetic code. Nucleobases include adenine (A), cytosine (C), guanine (G), thymine (T), and uracil (U). Nucleobases include pseudouridine (Ψ), dihydrouridine (D), and 7-methylguanosine (m 7 Modified nucleobases include, but are not limited to, modified nucleobases, including but not limited to: Nucleosides. A nucleoside is a nucleic acid base linked to a five-carbon sugar (e.g., ribose). Examples of nucleosides include adenosine, cytidine, guanosine, thymidine, and uridine.
[0033] Nucleotides. Nucleotides contain a nucleoside and a phosphate group. Nucleosides with one phosphate group are nucleoside monophosphates (NMPs), which include adenosine monophosphate (AMP), cytidine monophosphate (CMP), guanosine monophosphate (GMP), thymidine monophosphate (TMP), and uridine monophosphate (UMP). Nucleosides with two phosphate groups are nucleoside diphosphates (NDPs), which include adenosine diphosphate (ADP), cytidine diphosphate (CDP), guanosine diphosphate (GDP), thymidine diphosphate (TDP), and uridine diphosphate (UDP). Nucleosides with three phosphate groups are nucleoside triphosphates (NTPs), which include adenosine triphosphate (ATP), cytidine triphosphate (CTP), guanosine triphosphate (GTP), thymidine triphosphate (TTP), and uridine triphosphate (UTP).
[0034] Phosphoribosyltransferases. Phosphoribosyltransferases, such as adenine phosphoribosyltransferase (APRTase), participate in nucleotide salvage pathways that provide an alternative to nucleotide biosynthesis in cells. APRTase catalyzes the following reaction in the purine nucleotide salvage pathway: adenine + phosphoribosylpyrophosphate (PRPP) → adenosine 5'-monophosphate (AMP) + pyrophosphate (PPi). Ribokinase. Ribokinase is an enzyme that transfers phosphate from a high-energy phosphate source (e.g., ATP or polyphosphate) to D-ribose to form D-ribose-5-phosphate. Examples include the rbsK gene product of E. coli and the QT17_05185 gene product of Thermus sp. 2.9.
[0035] Phosphopentomutase. Phosphopentomutase is an enzyme that transfers phosphate in a ribose-phosphate molecule. In particular, phosphoribomutase catalyzes the reversible interconversion of D-ribose-1-phosphate and D-ribose-5-phosphate. Examples include the deoB gene product of E. coli and the TM0167 gene product of Thermotoga maritima. Nucleoside phosphorylase. Nucleoside phosphorylase is an enzyme that catalyzes the following reversible reaction: nucleobase + D-ribose-1-phosphate <=> nucleoside + inorganic phosphate. Purine nucleoside phosphorylase catalyzes reactions between purine nucleobases (e.g., adenine, guanine) and purine nucleosides (e.g., adenosine, guanosine). Pyrimidine nucleoside phosphorylase catalyzes reactions between pyrimidine nucleobases (e.g., cytosine, uracil) and pyrimidine nucleosides (e.g., cytidine, uridine). Examples of nucleoside phosphorylases include the products of the deoD, xapA, and udp genes in E. coli and the TtPNPI, TtPNPII, and TtPyNP enzymes in Thermus thermophilus HB27.
[0036] Polynucleotide phosphorylase. Polynucleotide phosphorylase (PNPase) is a bifunctional enzyme with phosphorolytic 3' to 5' exoribonuclease activity and 3'-terminal oligonucleotide polymerase activity. PNPase can catalyze the degradation of RNA to nucleoside 5' diphosphates (NDPs) using inorganic phosphate as a cosubstrate. The use of high concentrations of inorganic phosphate while using PNPase to degrade RNA can drive PNPase activity while simultaneously reducing potential NDP yield losses due to phosphatase activity that may be present in the reaction mixture, because inorganic phosphate is known to inhibit such undesirable activity. In some cases, PNPase, optionally in combination with one or more helicases, is used to catalyze the degradation of RNA to NDPs. The addition of a helicase can improve PNPase-mediated depolymerization of cellular RNA by improving the accessibility of structured RNA.
[0037] Nucleases. Nucleases are enzymes that cleave phosphodiester bonds in the backbone of DNA (DNases) or RNA (RNases). Thus, ribonucleases (RNases) can catalyze the degradation of RNA into nucleoside monophosphates (NMPs). Non-limiting examples of enzymes that can be used to depolymerize RNA as provided herein are provided in Table 1. In some cases, more than one nuclease is used in the reaction mixture to depolymerize RNA. In some cases, two, three, four, or five different nucleases are used in the reaction mixture.
[0038] Table 1. Examples of enzymes for RNA depolymerization [Table 1]
[0039] Kinases. Kinases are generally enzymes that catalyze the transfer of a phosphate group from a high-energy phosphate donor molecule (e.g., ATP, GTP, UTP, CTP, or polyphosphate containing n phosphate groups in the polymer) to a specific substrate / molecule. This process produces a phosphorylated substrate and a dephosphorylated form of the high-energy phosphate donor molecule (e.g., ADP, GDP, UDP, CDP, or polyphosphate containing n-1 phosphate groups in the polymer). Non-limiting examples of kinases for use as provided herein include NMP kinases, NDP kinases, nucleoside kinases, and polyphosphate kinases.
[0040] Polyphosphate kinase. Polyphosphate kinase is a kinase that binds polyphosphate (PolyP n ), to a specific substrate / molecule. This process is referred to as phosphorylation, where the substrate acquires a phosphate group and the high-energy phosphate donor molecule donates a phosphate group. This transesterification reaction occurs between the phosphorylated substrate and the phosphate donor molecule (PolyP), which has lost the donated phosphate group. n-1 (e.g., nucleotides such as nucleotides of interest). The polyphosphate kinases of the present disclosure, in some cases, convert nucleosides to NMPs, NMPs to NDPs, and / or NDPs to NTPs. Non-limiting examples of polyphosphate kinases are provided in Table 2. In some cases, more than one polyphosphate kinase is used in the reaction mixture. In some cases, two, three, four, or five different polyphosphate kinases are used in the reaction mixture.
[0041] Table 2. Examples of polyphosphate kinases [Table 2]
[0042] Nucleoside kinases. Nucleoside kinases catalyze phosphoryl transfer from high-energy phosphate donor molecules (e.g., nucleotide triphosphates) to the R-OH acceptor, typically the 5'-hydroxyl group of the sugar moiety of a nucleoside (e.g., adenosine, guanosine, cytidine, uridine). This process converts the nucleoside to an NMP (e.g., AMP, CMP, GMP, UMP). In some cases, nucleoside kinases catalyze the transfer of a phosphate from a phosphate donor molecule to adenosine to produce adenosine monophosphate (AMP). In some cases, nucleoside kinases catalyze the transfer of a phosphate from a phosphate donor molecule to cytidine to produce cytidine monophosphate (CMP). In some cases, nucleoside kinases catalyze the transfer of a phosphate from a phosphate donor molecule to guanosine to produce guanosine monophosphate (GMP). In some cases, a nucleoside kinase catalyzes the transfer of a phosphate from a phosphate donor molecule to uridine to produce uridine monophosphate (UMP). Non-limiting examples of nucleoside kinases are provided in Table 3. In some cases, more than one nucleoside kinase is used in the reaction mixture. In some cases, two, three, four, or five different nucleoside kinases are used in the reaction mixture.
[0043] Table 3. Examples of nucleoside kinases [Table 3]
[0044] NMP Kinase. Nucleoside monophosphate kinase (NMP kinase) is an enzyme that catalyzes the transfer of the terminal phosphoryl group from a nucleoside triphosphate (NTP) (usually ATP) to a phosphoryl group on a nucleoside monophosphate (e.g., AMP, CMP, GMP, UMP). This process converts NMP to NDP (e.g., ADP, CDP, GDP, UDP). In some cases, NMP kinases catalyze the transfer of a phosphate from a phosphate donor molecule to AMP to produce adenosine diphosphate (ADP). In some cases, NMP kinases catalyze the transfer of a phosphate from a phosphate donor molecule to CMP to produce cytidine diphosphate (CDP). In some cases, NMP kinases catalyze the transfer of a phosphate from a phosphate donor molecule to GMP to produce guanosine diphosphate (GDP). In some cases, NMP kinases catalyze the transfer of a phosphate from a phosphate donor molecule to UMP to produce uridine diphosphate (UDP). Non-limiting examples of NMP kinases are provided in Table 4. In some cases, more than one NMP kinase is used in the reaction mixture. In some cases, two, three, four, or five different NMP kinases are used in the reaction mixture.
[0045] Table 4A. Examples of AMP kinase enzymes [Table 4A]
[0046] Table 4B. Examples of CMP kinase enzymes [Table 4B]
[0047] Table 4C. Examples of UMP kinase enzymes [Table 4C]
[0048] Table 4D. Examples of GMP kinase enzymes [Table 4D]
[0049] NDP Kinase. Nucleoside diphosphate kinases (NDP kinases) are enzymes that catalyze the reversible exchange of the terminal phosphate between various NDPs (e.g., ADP, CDP, GDP, UDP) and nucleoside triphosphates (NTPs) to generate NTPs (e.g., ATP, CTP, GTP, UTP). In some cases, NDP kinases catalyze the transfer of a phosphate from a phosphate donor molecule to ADP to generate adenosine triphosphate (ATP). In some cases, NDP kinases catalyze the transfer of a phosphate from a phosphate donor molecule to CDP to generate cytidine triphosphate (CTP). In some cases, NDP kinases catalyze the transfer of a phosphate from a phosphate donor molecule to GDP to generate guanosine triphosphate (GTP). In some cases, NDP kinases catalyze the transfer of a phosphate from a phosphate donor molecule to UDP to generate uridine triphosphate (UTP). Non-limiting examples of NDP kinases are provided in Table 5. In some cases, more than one NDP kinase is used in the reaction mixture. In some cases, two, three, four, or five different NDP kinases are used in the reaction mixture.
[0050] Table 5. Examples of NDP kinases [Table 5]
[0051] Non-limiting examples of kinases that convert NDP to NTP include nucleoside diphosphate kinase, polyphosphate kinase, and pyruvate kinase. As discussed herein, thermostable variants of the aforementioned enzymes are encompassed by the present disclosure. In some cases, the NDP kinase is obtained from Aquifex aeolicus.
[0052] Phosphorylation of NMPs to NTPs occurs in some cases through the polyphosphate-dependent kinase pathway, in which a high-energy phosphate is transferred from polyphosphate to ADP via polyphosphate kinase (PPK). In some cases, the polyphosphate kinase belongs to the polyphosphate kinase 1 (PPK1) family, which transfers a high-energy phosphate from polyphosphate to ADP to form ATP. This ATP is then used by NMP kinases (e.g., AMP kinase, UMP kinase, GMP kinase, and CMP kinase) to convert NMPs to their cognate ribonucleotide diphosphates (NDPs). Furthermore, ATP is then used by nucleotide diphosphate kinases to convert NDPs to NTPs.
[0053] In some cases, the polyphosphate kinase belongs to the polyphosphate kinase 2 (PPK2) family. In some cases, the polyphosphate kinase belongs to the class I PPK2 family, which transfers a high-energy phosphate from polyphosphate to NDP to form NTP. The ATP generated by the system is used as a high-energy phosphate donor to convert NMP to NDP. In some cases, the polyphosphate kinase belongs to the class III PPK2 family, which transfers a high-energy phosphate from polyphosphate to NMP and NDP to form NTP. In some cases, the class III PPK2 is used alone to generate NTP from NMP. In other embodiments, the class III PPK2 is used in combination with other kinases. The class III PPK2 generates ATP from ADP, AMP, and polyphosphate, which is then used by NMP and NDP kinases to convert NMP to NTP.
[0054] Non-limiting examples of PPK2 enzymes for use as provided herein are listed in Table 2. Thus, in some cases, the PPK2 enzyme is thermostable. For example, the PPK2 enzyme can be a thermostable Class III PPK2 enzyme, which favors ATP synthesis over polyphosphate polymerization and converts both ADP and AMP to ATP. In some cases, the PPK2 enzyme is used to convert polyphosphate, such as hexametaphosphate, to ATP at a rate in the range of 10 to 800 mM per hour (e.g., 10, 15, 20, 25, 50, 75, 100, 150, 200, 250, 300, 350, 400, 450, 500, 550, 600, 650, 700, 750, or 800 mM per hour).
[0055] Polyphosphate and other high-energy phosphates. High-energy phosphate molecules (phosphate donor molecules) release energy by hydrolysis of high-energy bonds, thereby providing an energy source for biochemical reactions. Polyphosphate (PolyP n ) and other high-energy phosphate molecules can be used as phosphate sources for the generation of NTPs and downstream RNA as described herein. n For example, PolyP comprises repeating units of phosphate (PO) linked together by a shared oxygen atom. Phosphorylation of specific substrates / molecules by kinases of the present disclosure is achieved by n This involves the donation of a phosphate group from PolyP n-1 Generate.
[0056] The present disclosure is not limited by the number of phosphate groups in the polyphosphate. n contains at least three phosphate groups (PolyP3). In some cases, PolyP n contains at least 4, at least 5, at least 6, at least 7, at least 8, at least 9, or at least 10 phosphate groups. n is hexametaphosphate. Other examples of high-energy phosphate molecules include, but are not limited to, NTP (e.g., ATP), NDP (e.g., ADP), NMP (e.g., AMP), phosphoenolpyruvate, 1,3-bisphosphoglycerate, creatine phosphate, phosphoenolpyruvate, glucose 1-phosphate, fructose 6-phosphate, and glucose 6-phosphate. In some cases, more than one high-energy phosphate is used in the reaction mixture. In some cases, two, three, four, or five different high-energy phosphates are used in the reaction mixture.
[0057] Template. A DNA template comprises a promoter, optionally an inducible promoter, and optionally a transcription terminator operably linked to a nucleotide sequence encoding the desired RNA product. The DNA template is typically provided on a vector such as a plasmid, although other template formats may be used (e.g., a linear DNA template generated by polymerase chain reaction (PCR), chemical synthesis, or other means known in the art). In some cases, more than one DNA template is used in the reaction mixture. In some cases, two, three, four, or five different DNA templates are used in the reaction mixture. The promoter or terminator may be a naturally occurring sequence or an engineered sequence. In some cases, the engineered sequence is modified to enhance transcriptional activity. In some cases, the promoter is a naturally occurring sequence. In other embodiments, the promoter is an engineered sequence. In some cases, the terminator is a naturally occurring sequence. In other embodiments, the terminator is an engineered sequence.
[0058] Polymerase. A polymerase is an enzyme that synthesizes a polymer of nucleic acid. Polymerases of the present disclosure include DNA-dependent RNA polymerases and RNA-dependent RNA polymerases. Non-limiting examples of polymerases are provided in Table 6. In some cases, the polymerase is T7 RNA polymerase. In some cases, more than one polymerase is used in the reaction mixture. In some cases, two, three, four, or five different polymerases are used in the reaction mixture.
[0059] Table 6. Examples of RNA polymerases [Table 6]
[0060] RNA Products. The RNA produced by the methods provided herein can be any type of RNA, including single-stranded RNA (ssRNA) and double-stranded RNA (dsRNA). Non-limiting examples of single-stranded RNA include messenger RNA (mRNA), microRNA (miRNA), small interfering RNA (siRNA), and antisense RNA. Double-stranded RNA herein includes fully double-stranded molecules that do not contain single-stranded regions (e.g., loops or overhangs), as well as partially double-stranded molecules that contain double-stranded and single-stranded regions (e.g., loops or overhangs). Thus, short hairpin RNA (shRNA) can be produced by the methods of the present disclosure. The RNA produced by the method provided herein may be modified as described herein.In some cases, RNA is produced according to the method described herein and then modified.In some cases, RNA is produced according to the method described herein using modified starting material.In some cases, modified starting material is modified nucleobase.In some cases, modified starting material is modified nucleoside.In some cases, modified starting material is modified nucleotide.
[0061] In some cases, the modified RNA comprises a backbone modification. In some cases, the backbone modification results in a longer half-life of the RNA due to reduced degradation mediated by nucleases. This, in turn, results in a longer half-life. Examples of suitable backbone modifications include, but are not limited to, phosphorothioate modification, phosphorodithioate modification, p-ethoxy modification, methylphosphonate modification, methylphosphorothioate modification, alkyl- and aryl-phosphate (wherein the charged phosphonate oxygen is replaced by an alkyl or aryl group), alkyl phosphotriester (wherein the charged oxygen moiety is alkylated), peptide nucleic acid (PNA) backbone modification, locked nucleic acid (LNA) backbone modification, etc. These modifications can be used in combination with each other and / or in combination with phosphodiester backbone linkage.
[0062] Alternatively or in addition, RNA may contain other modifications, including modifications in the base or sugar moiety. Examples include RNA with sugars covalently linked to low molecular weight organic groups other than a hydroxyl group at the 3' position and a phosphate group at the 5' position (e.g., 2'-O-alkylated ribose), and RNA with sugars such as arabinose instead of ribose. RNA also encompasses substituted purines and pyrimidines, such as C-5 propyne-modified bases (Wagner et al., Nature Biotechnology 14:840-844, 1996). Other purines and pyrimidines include, but are not limited to, 5-methylcytosine, 2-aminopurine, 2-amino-6-chloropurine, 2,6-diaminopurine, and hypoxanthine. Other such modifications are well known to those skilled in the art.
[0063] NTP generation pathway Provided herein are systems, methods, compositions, and kits for the production of NTPs through a variety of different enzymatic pathways, each of which utilizes an energy source and low-cost starting materials in the reaction mixture as provided herein. These enzymatic pathways can, in some cases, be extended to the production of RNA (e.g., mRNA or double-stranded RNA) by adding a DNA template and polymerase to the reaction mixture (see, e.g., Figure 1). It should be understood that any of the pathway enzymes described herein (e.g., nucleases, kinases, and / or polymerases) may be obtained from unmodified (native) or engineered cells. In some cases, the pathway enzymes are secreted from the cells (e.g., the cells are engineered to secrete the enzymes). In other embodiments, the pathway enzymes are obtained from a cell lysate of the cells. In some cases, the pathway enzymes are components of a cell lysate, in which case the cell lysate is added to or serves as a reaction mixture in a biosynthetic reaction. In cases where a cell lysate is used in or serves as a reaction mixture, the cell lysate can be exposed to conditions to remove undesired enzymatic activity, as described below, before producing the desired product (NTP and / or RNA).
[0064] Conversion of NDP to NTP. In some aspects, NTPs are produced using NDP as a substrate, as depicted in Figure 2A. For example, a method for producing NTPs may include incubating NDP, (e.g., 1, 2, 3, or 4) polyphosphate kinases, and (e.g., 1, 2, 3, or 4) polyphosphates in a reaction mixture under conditions suitable for producing NTPs. In some cases, the reaction mixture for NTP production includes an NDP kinase (see, e.g., Table 5). In some cases, the NTP production reaction mixture may also include a nucleoside kinase.
[0065] Conversion of NMP to NTP. In some aspects, NTPs are produced using 5'-NMP as a substrate, as depicted in Figure 2B. For example, a method for producing NTPs may include incubating a 5'-NMP, (e.g., 1, 2, 3, or 4) polyphosphate kinases, and (e.g., 1, 2, 3, or 4) polyphosphates in a reaction mixture under conditions suitable for producing NTPs. In some cases, the reaction mixture for NTP production includes an NMP kinase (see, e.g., Table 4) and / or an NDP kinase (see, e.g., Table 5). In some cases, the NTP production reaction mixture may also include a nucleoside kinase.
[0066] Conversion of Nucleosides to NTPs. In some aspects, NTPs are produced using nucleosides as substrates, as depicted in FIG. 2C. For example, an NTP production method may include incubating a nucleoside, (e.g., 1, 2, 3, or 4) polyphosphate kinases, and (e.g., 1, 2, 3, or 4) polyphosphates in a reaction under conditions suitable for the production of NTPs. In some cases, the NTP production reaction mixture may also include a nucleoside kinase (see, e.g., Table 3) and / or an NMP kinase (see, e.g., Table 4) and / or an NDP kinase (see, e.g., Table 5).
[0067] Conversion of Nucleobases to NTPs. In some aspects, NTPs are produced using nucleobases as substrates, as depicted in Figure 2D. For example, an NTP production method may include incubating a nucleobase, (e.g., 1, 2, 3, or 4) phosphoribosyltransferases, phosphoribosylpyrophosphates, (e.g., 1, 2, 3, or 4) polyphosphate kinases, and (e.g., 1, 2, 3, or 4) polyphosphates in a reaction mixture under conditions suitable for producing NTPs. In some cases, the NTP production reaction mixture may also include an NMP kinase (see, e.g., Table 4) and / or an NDP kinase (see, e.g., Table 5). In some cases, the NTP production reaction mixture may also include a nucleoside kinase. In some cases, biosynthetic pathways for the production of NTPs and / or RNA may use cellular RNA as a substrate by first depolymerizing the cellular RNA into NDPs or by first depolymerizing the cellular RNA into NMPs.
[0068] Conversion of Nucleobase and Ribose to NTP. In some aspects, NTPs are produced using nucleobases as substrates, as depicted in Figure 2E. For example, an NTP production method may include incubating a nucleobase, D-ribose, ribokinase, phosphopentomutase, at least one (e.g., 1, 2, 3, or 4) nucleoside phosphorylase, at least one (e.g., 1, 2, 3, or 4) polyphosphate kinase, and at least one (e.g., 1, 2, 3, or 4) polyphosphate in a reaction under conditions suitable for the production of NTPs. In some cases, the NTP production reaction mixture may also include at least one NMP kinase (e.g., see Table 3) and / or at least one NDP kinase (e.g., see Table 4) and / or a nucleoside kinase.
[0069] NDP-mediated conversion of cellular RNA to NTPs. In some aspects, as depicted in Figure 3A, NTPs are produced using cellular RNA as a substrate by first breaking down (degrading / depolymerizing) the cellular RNA into NDPs and then converting the NDPs to NTPs. For example, an NTP production method may include incubating cellular RNA, polynucleotide phosphorylase (PNPase), and phosphate in a reaction mixture under conditions suitable for the production of NDPs. To allow the production of NTPs to proceed, the reaction mixture in some cases also includes polyphosphate kinase and polyphosphate. Thus, the method further includes incubating the reaction mixture under conditions suitable for the production of NTPs. In some cases, the reaction mixture further includes an NDP kinase. In some cases, the NTP production reaction mixture may also include a nucleoside kinase.
[0070] NMP-mediated conversion of cellular RNA to NTPs. In some aspects, NTPs are produced using cellular RNA as a substrate by first breaking the cellular RNA into 5'-NMPs and then converting NMPs to NDPs and NDPs to NTPs, as depicted in Figure 3B. For example, an NTP production method may include incubating cellular RNA and a ribonuclease in a reaction mixture under conditions suitable for the production of 5'-NMPs. To allow the production of NTPs to proceed, the reaction mixture, in some cases, also contains polyphosphate kinase and polyphosphate. Thus, the method also includes incubating the reaction mixture under conditions suitable for the production of NTPs. In some cases, the reaction mixture further contains an NDP kinase. In some cases, the NTP production reaction mixture may also contain a nucleoside kinase. Alternatively, an NTP production method may include incubating cellular RNA, a ribonuclease that cleaves RNA into 3'-NMPs, and an appropriate phosphatase (e.g., alkaline phosphatase, etc.) in a reaction mixture under conditions suitable for the production of nucleosides. The phosphatase would then be removed before proceeding to generate NTPs.
[0071] RNA production pathway As shown in Figure 1, RNA (e.g., mRNA or double-stranded RNA) may be produced through a variety of different enzymatic pathways, each of which utilizes an energy source and low-cost starting materials in the reaction mixture, as described herein. Accordingly, systems, methods, compositions, and kits for the production of RNA are provided herein.
[0072] Conversion of NDP to RNA. In some aspects, RNA is produced using NDP as a substrate, as depicted in Figure 2A. For example, an RNA production method includes incubating NDP, polyphosphate kinase, polyphosphate, a DNA template, and RNA polymerase in a reaction mixture under conditions suitable for producing RNA. In some cases, the RNA production reaction mixture may also include an NDP kinase (see, e.g., Table 5). In some cases, the RNA production reaction mixture may also include a nucleoside kinase.
[0073] Conversion of NMP to RNA. In some aspects, RNA is produced using a 5' NMP as a substrate, as depicted in Figure 2B. For example, an RNA production method includes incubating a 5' NMP, polyphosphate kinase, polyphosphate, a DNA template, and an RNA polymerase in a reaction mixture under conditions suitable for producing RNA. In some cases, the RNA production reaction mixture may also include an NMP kinase (see, e.g., Table 4) and / or an NDP kinase (see, e.g., Table 5). In some cases, the RNA production reaction mixture may also include a nucleoside kinase.
[0074] Conversion of Nucleosides to RNA. In some aspects, RNA is produced using nucleosides as substrates, as depicted in Figure 2C. For example, an RNA production method includes incubating a nucleoside, polyphosphate kinase, polyphosphate, a DNA template, and an RNA polymerase in a reaction mixture under conditions suitable for producing RNA. In some cases, the RNA production reaction mixture may also include a nucleoside kinase (see, e.g., Table 3) and / or an NMP kinase (see, e.g., Table 4) and / or an NDP kinase (see, e.g., Table 5).
[0075] NDP-mediated conversion of cellular RNA to RNA. In some aspects, RNA is produced using cellular RNA as a substrate by first breaking down the cellular RNA into NDP, as depicted in FIG. 3A. For example, an RNA production method may include incubating cellular RNA, polynucleotide phosphorylase (PNPase), and phosphate in a reaction mixture under conditions suitable for the production of NDP. It may be advantageous to remove PNPase to avoid degrading the final product before proceeding to the production of RNA. Thus, the method may further include removing PNPase and incubating NDP, polyphosphate kinase, polyphosphate, a DNA template, and polymerase in the reaction mixture, or in a second reaction mixture, under conditions suitable for the production of RNA. In some cases, the reaction mixture further includes an NDP kinase. In some cases, the RNA production reaction mixture may also include a nucleoside kinase.
[0076] In some cases, these pathway enzymes can withstand removal conditions, as discussed below, and thus all reaction components are included in a single (one-step) reaction mixture. For example, a method for producing RNA may include (a) incubating cellular RNA, PNPase, phosphate, polyphosphate kinase, polyphosphate, a DNA template, and a polymerase in a reaction mixture under conditions suitable for the production of NDP (optionally, wherein the reaction mixture further comprises an NDP kinase), (b) removing PNPase, and (c) incubating the reaction mixture under conditions suitable for the production of RNA.
[0077] NMP-mediated conversion of cellular RNA to RNA. In some aspects, RNA is produced using cellular RNA as a substrate by first breaking down the cellular RNA into 5' NMPs, as depicted in Figure 3B. For example, the RNA production method may include incubating cellular RNA and ribonuclease in a reaction mixture under conditions suitable for the production of 5' NMPs. It may be advantageous to remove the ribonuclease to avoid degrading the final product before proceeding to the production of RNA. Thus, the method may further include removing the ribonuclease and incubating the 5' NMP, polyphosphate kinase, polyphosphate, DNA template, and polymerase in the reaction mixture or in a second reaction mixture under conditions suitable for the production of RNA. In some cases, the reaction mixture further comprises an NMP kinase and / or an NDP kinase. In some cases, the RNA production reaction mixture may also comprise a nucleoside kinase.
[0078] In some cases, these pathway enzymes can withstand removal conditions, as discussed below, and therefore all reaction components are included in a single (one-step) reaction mixture. For example, a method for producing RNA may include: (a) incubating cellular RNA, ribonuclease, polyphosphate kinase, polyphosphate, a DNA template, and polymerase in a reaction mixture under conditions suitable for the production of NMPs (optionally, wherein the reaction mixture further comprises an NMP kinase and / or an NDP kinase); (b) removing the ribonuclease; and (c) incubating the reaction mixture under conditions suitable for the production of RNA.
[0079] Conversion of Nucleobases to RNA. In some aspects, RNA is produced using nucleobases as substrates, as depicted in Figure 2D. For example, an RNA production method may include incubating in a reaction mixture nucleobases, (e.g., one, two, three, or four) phosphoribosyltransferases, phosphoribosylpyrophosphate, polyphosphate kinase, polyphosphate, a DNA template, and an RNA polymerase under conditions suitable for producing RNA. In some cases, the RNA production reaction mixture may also include an NMP kinase (see, e.g., Table 4) and / or an NDP kinase (see, e.g., Table 5). In some cases, the RNA production reaction mixture may also include a nucleoside kinase.
[0080] Conversion of nucleobases and ribose to RNA. In some aspects, RNA is produced using nucleobases as substrates, as depicted in Figure 2E. For example, an RNA production method may include incubating in a reaction mixture nucleobases, D-ribose, ribokinase, phosphopentomutase, at least one (e.g., 1, 2, 3, or 4) nucleoside phosphorylase, at least one polyphosphate kinase, at least one polyphosphate, at least one DNA template, and at least one RNA polymerase under conditions suitable for producing RNA. In some cases, the RNA production reaction mixture may also include at least one NMP kinase (e.g., see Table 3) and / or at least one NDP kinase (e.g., see Table 4) and / or a nucleoside kinase.
[0081] Enzyme Source Any (e.g., one, two, three, or more) or all of the pathway enzymes (e.g., nucleases, kinases, polymerases, etc.) provided herein can be endogenous (unmodified) enzymes or recombinant enzymes expressed by a cell. In some cases, the pathway enzymes are provided as components of a cell lysate included in a reaction mixture. In some cases, the pathway enzymes are purified from a cell lysate and included in a reaction mixture. In some cases, the pathway enzymes are provided as components of a cell lysate and the pathway enzymes are purified from the cell lysate. In some cases, the pathway enzymes are secreted from the cell broth and optionally purified.
[0082] In some cases, the pathway enzymes (e.g., nucleases, kinases, polymerases, etc.) are endogenous enzymes purified from cells and included in the reaction mixture as purified enzymes. In some cases, the pathway enzymes (e.g., nucleases, kinases, polymerases, etc.) are endogenous enzymes provided as a component of a cell lysate included in the reaction mixture. In some cases, the pathway enzymes (e.g., nucleases, kinases, polymerases, etc.) are recombinant enzymes purified from cells and included in the reaction mixture as purified enzymes. In some cases, the pathway enzymes (e.g., nucleases, kinases, polymerases, etc.) are recombinant enzymes provided as a component of a cell lysate included in the reaction mixture. In some cases, the pathway enzymes are secreted from the cell broth and optionally purified.
[0083] The present disclosure also encompasses endogenous enzymes and recombinant enzymes secreted from a cell. Thus, in some cases, a pathway enzyme (e.g., a nuclease, kinase, polymerase, etc.) is an endogenous enzyme secreted from a cell. In some cases, a pathway enzyme (e.g., a nuclease, kinase, polymerase, etc.) is a recombinant enzyme secreted from a cell.
[0084] Elimination of unwanted enzyme activity In various embodiments provided herein, enzymes prepared from cells or cell lysates expressing pathway enzymes are used in reaction mixtures for the production of NTPs and / or RNA. These cells or cell lysates contain enzymes that can have adverse effects on NTP and / or RNA production. Non-limiting examples of such enzymes include phosphatases, nucleases, proteases, deaminases, oxidoreductases, and / or hydrolases, such as those expressed by Escherichia coli cells. Phosphatases remove phosphate groups (e.g., converting NMPs to nucleosides, NDPs to NMPs, or NTPs to NDPs), which reduces NTP production due to futile cycles of nucleotide phosphorylation / dephosphorylation. Nucleases cleave nucleic acids into monomers or oligomers, which leads to RNA product degradation (e.g., by RNases) and / or DNA template degradation (e.g., by DNases). Proteases cleave proteins into amino acids or peptides, which degrade pathway enzymes. Deaminases remove amino groups, which can reduce the concentration of NTPs by converting pathway intermediates into unwanted substrates (e.g., xanthine and hypoxanthine) and lead to mutations in RNA products (e.g., C to U). Hydrolases (e.g., nucleoside hydrolases or nucleotide hydrolases) cleave nucleosides or nucleotides into base and sugar moieties, which reduces the concentration of NTPs due to irreversible degradation of the nucleotide. Oxidoreductases catalyze the transfer of electrons from one molecule (oxidant) to another (reductant). Oxidation and / or reduction reactions can, for example, damage nucleic acid bases in DNA and / or RNA, leading to errors in transcription and / or translation, or damage proteins or enzymes, resulting in loss of function.
[0085] Therefore, in many embodiments, it is advantageous to remove these native enzyme activities or other undesired enzyme activities in enzyme preparations, cell lysates, and / or reaction mixtures. As used herein, "removal" of enzyme activity may refer to partial (e.g., at least 30%, 40%, 50%, 60%, 70%, 80%, or 90% of the activity being removed) or complete (100% of the activity being removed). As discussed herein, enzyme activity can be removed by genetic modification, conditional inactivation, and / or physical separation. Other removal methods may also be used. Undesired enzyme activity may be derived from at least one (e.g., 1, 2, 3, 4, or 5) native (endogenous) enzyme, including, but not limited to, phosphatase, nuclease, protease, deaminase, oxidoreductase, and / or hydrolase.
[0086] In some cases, undesired phosphatase activity is removed from the enzyme preparation, cell lysate, and / or reaction mixture. In some cases, undesired nuclease activity is removed from the enzyme preparation, cell lysate, and / or reaction mixture. In some cases, undesired protease activity is removed from the enzyme preparation, cell lysate, and / or reaction mixture. In some cases, undesired deaminase activity is removed from the enzyme preparation, cell lysate, and / or reaction mixture. In some cases, undesired hydrolase activity is removed from the enzyme preparation, cell lysate, and / or reaction mixture.
[0087] Undesirable (e.g., native) enzyme activity can be removed using genetic, conditional, or separation approaches. In some cases, genetic approaches can be used to remove undesirable enzyme activity. Thus, in some cases, cells are modified to reduce or remove undesirable enzyme activity. Examples of genetic approaches that can be used to reduce or remove undesirable enzyme activity include, but are not limited to, secretion, gene knockout, and protease targeting. In some cases, conditional approaches are used to remove undesirable enzyme activity. Thus, in some cases, undesirable enzymes exhibiting undesirable activity remain in the enzyme preparation, cell lysate, and / or reaction mixture and are selectively inactivated. Examples of conditional approaches that can be used to reduce or remove undesirable enzyme activity include, but are not limited to, temperature changes, pH, salts, detergents, organic solvents (e.g., alcohols), and the use of chemical inhibitors. In some cases, separation / purification approaches are used to remove undesirable enzyme activity. Thus, in some cases, undesired enzymes exhibiting undesired activity are physically removed from enzyme preparations, cell lysates, and / or reaction mixtures. Examples of separation approaches that can be used to reduce or remove undesired enzyme activity include, but are not limited to, precipitation, fixation, filtration, and chromatography.
[0088] Genetic Approaches. In some cases, cells expressing enzymes and / or DNA templates in the NTP and / or RNA production pathway are modified to reduce or eliminate undesired enzymatic activity. In some cases, genes encoding enzymes exhibiting undesired activity are deleted from the cells. In some cases, genes encoding enzymes exhibiting undesired activity are mutated so that the resulting gene product is non-functional. In some cases, enzymes exhibiting undesired activity are modified to include site-specific protease recognition sequences in their protein sequence so that the enzymes can be "targeted" and cleaved for inactivation (see, e.g., U.S. Publication No. 2012 / 0052547 A1, published March 1, 2012; International Publication No. WO 2015 / 021058 A2, published February 12, 2015; and International Publication No. WO 2012 / 030980, published March 8, 2012; each of which is incorporated herein by reference).
[0089] Cleavage of an enzyme containing a site-specific protease recognition sequence occurs from contact with a cognate site-specific protease that is sequestered (separated from the target enzyme) in the periplasm of the cell during the cell growth phase (e.g., when the engineered cells are cultured) and contacted with the enzyme during the ATP generation phase (e.g., following cell lysis to generate a cell lysate). Thus, the engineered cells of the present disclosure, in some cases, contain (i) an engineered nucleic acid encoding an enzyme exhibiting an undesired activity and containing a site-specific protease recognition sequence in the enzyme's protein sequence, and (ii) an engineered nucleic acid encoding a site-specific protease that cleaves the enzyme's site-specific protease recognition sequence and containing a periplasmic-targeting sequence. The periplasmic-targeting sequence causes the site-specific protease to be sequestered in the periplasmic space of the cell until the cell is lysed. Examples of periplasmic-targeting sequences are known.
[0090] Examples of proteases that can be used in accordance with the present disclosure include, but are not limited to, alanine carboxypeptidase, astacin, bacterial leucyl aminopeptidase, cancer procoagulant, cathepsin B, clostripain, cytosolic alanyl aminopeptidase, elastase, endoproteinase Brg-C, enterokinase, gastricsin, gelatinase, Gly-X carboxypeptidase, glycyl endopeptidase, human rhinovirus 3C protease, hypodermin C, Iga-specific serine endopeptidase, leucyl aminopeptidase, leucyl endopeptidase, lysC, lysosomal pro-X carboxypeptidase, lysyl aminopeptidase, methionyl aminopeptidase, Examples of enzymes that may be involved in the production of plasminogen activators include myxobacter, nardilysin, pancreatic endopeptidase E, picornacin 2B, picornacin 3C, proendopeptidase, prolyl aminopeptidase, proprotein convertase I, proprotein convertase II, russelllysin, saccharopepsin, semenogelase, T-plasminogen activator, thrombin, tissue kallikrein, tobacco etch virus (TEV), togavirin, tryptophanyl aminopeptidase, U-plasminogen activator, V8, venombin B, venombin BB, and Xaa-proaminopeptidase.
[0091] Conditioning Approaches. In some cases, the enzyme preparation, cell lysate, and / or reaction mixture contains an enzyme exhibiting an undesired activity that is to be selectively inactivated. In some cases, the enzyme exhibiting the undesired activity is selectively inactivated by exposing the enzyme to removing conditions (e.g., high or low temperature, acidic or basic pH, high or low salt, detergents, and / or organic solvents).
[0092] In some cases, enzyme preparations, cell lysates, and / or reaction mixtures are exposed to temperatures that temporarily or irreversibly inactivate enzymes exhibiting undesired activity. "Temperature inactivation" refers to the process of heating or cooling an enzyme preparation, cell lysate, and / or reaction mixture to a temperature sufficient to inactivate (or at least partially inactivate) the native target enzyme. Generally, the process of temperature inactivation involves denaturation (unfolding) of the undesired enzyme. The temperature at which enzymes denature varies among organisms. For example, in E. coli, enzymes generally denaturate at temperatures above 41°C. For other organisms, the denaturation temperature may be higher or lower than 41°C. Enzymes in cell lysates such as those provided herein can be temperature inactivated at temperatures between 0°C and 95°C, or higher. In some cases, the enzymes in the cell lysate are temperature-inactivated at a temperature of 0-90°C, 0-80°C, 0-70°C, 0-60°C, 0-50°C, 0-40°C, 0-30°C, 0-20°C, 0-10°C, or 0-5°C. In some cases, the enzymes in the cell lysate are temperature-inactivated at a temperature of 5-95°C, 10-95°C, 20-95°C, 30-95°C, 40-95°C, 50-95°C, 60-95°C, 70-95°C, 80-95°C, or 90-95°C. For example, the enzymes in the cell lysate may be temperature-inactivated at a temperature of about 40°C, 42°C, 45°C, 50°C, 55°C, 60°C, 65°C, 70°C, 75°C, 80°C, 85°C, 90°C, or 95°C. In some cases, the enzymes in the cell lysate are temperature inactivated at a temperature of 50-80° C. In some cases, the enzymes in the cell lysate are temperature inactivated at a temperature of about 70° C. In some cases, the enzymes in the cell lysate are temperature inactivated at a temperature of about 60° C.
[0093] In some cases, enzyme preparations, cell lysates, and / or reaction mixtures are exposed to acid or base (a change in pH), which temporarily or irreversibly inactivates enzymes exhibiting undesired activity. "Acid or base inactivation" refers to the process of adjusting the pH of an enzyme preparation, cell lysate, and / or reaction mixture to a level sufficient to inactivate (or at least partially inactivate) the enzyme. Generally, the process of acid or base inactivation involves denaturation (unfolding) of the enzyme. The pH at which enzymes denature varies among organisms. For example, in E. coli, native enzymes generally denature at a pH above 7.5 or below 6.5. The denaturing pH may be higher or lower than the denaturing pH for other organisms. Enzymes in the enzyme preparations, cell lysates, and / or reaction mixtures provided herein may be base-inactivated at a pH of 7.5 to 14 or higher. In some cases, the enzymes in the cell lysate are base-inactivated at a pH of 8 to 14, 8.5 to 14, 9 to 14, 9.5 to 14, 10 to 14, 10.5 to 14, 11 to 14, 11.5 to 14, 12 to 14, 12.5 to 14, 13 to 14, or 13.5 to 14. In some cases, the enzymes in the enzyme preparation, cell lysate, and / or reaction mixture are base-inactivated at a pH of 7.5 to 13.5, 7.5 to 13, 7.5 to 12.5, 7.5 to 12, 7.5 to 11.5, 7.5 to 11, 7.5 to 10.5, 7.5 to 10, 7.5 to 9.5, 7.5 to 9, 7.5 to 8.5, or 7.5 to 8. For example, the enzymes of the enzyme preparations, cell lysates, and / or reaction mixtures may be base-inactivated at a pH of about 7.5, 8, 8.5, 9, 9.5, 10, 10.5, 11, 11.5, 12, 12.5, 13, 13.5, or 14. The enzymes of the enzyme preparations, cell lysates, and / or reaction mixtures as provided herein may be acid-inactivated at a pH of 6.5-0 or lower. In some cases, the enzymes of the enzyme preparations, cell lysates, and / or reaction mixtures are acid-inactivated at a pH of 6.5-0.5, 6.5-1, 6.5-1.5, 6.5-2, 6.5-2.5, 6.5-3, 6.5-3.5, 6.5-4, 6.5-4.5, 6.5-5, or 6.5-6.In some cases, the enzymes of the enzyme preparation, cell lysate, and / or reaction mixture are acid-inactivated at a pH of 6 to 0, 5.5 to 0, 5 to 0, 4.5 to 0, 4 to 0, 3.5 to 0, 3 to 0, 2.5 to 0, 2 to 0, 1.5 to 0, 1 to 0, or 0.5 to 0. For example, the enzymes of the enzyme preparation, cell lysate, and / or reaction mixture may be acid-inactivated at a pH of about 6.5, 6, 5.5, 5, 4.5, 4, 3.5, 3, 2.5, 2, 1.5, 1, 0.5, or 0.
[0094] In some cases, enzyme preparations, cell lysates, and / or reaction mixtures are exposed to high or low salt (a change in salt concentration) to temporarily or irreversibly inactivate enzymes exhibiting undesired activity. "Salt inactivation" refers to the process of adjusting an enzyme preparation, cell lysate, and / or reaction mixture to a salt concentration sufficient to inactivate (or at least partially inactivate) the enzyme. Generally, the salt inactivation process involves denaturing (unfolding) the enzyme. The salt concentration at which an enzyme is inactivated varies among organisms. For example, in E. coli, native enzymes generally denature at salt concentrations greater than 600 mM. The denaturing salt concentration may be higher or lower than the denaturing salt concentration for other organisms. A salt is a combination of an anion and a cation. Non-limiting examples of cations include lithium, sodium, potassium, magnesium, calcium, and ammonium. Non-limiting examples of anions include acetate, hydrochloride, sulfate, and phosphate. The enzymes of the enzyme preparations, cell lysates, and / or reaction mixtures provided herein may be salt-inactivated at a salt concentration of 600-1000 mM or higher. In some cases, the enzymes of the enzyme preparations, cell lysates, and / or reaction mixtures are salt-inactivated at a salt concentration of 700-1000 mM, 750-1000 mM, 800-1000 mM, 850-1000 mM, 900-1000 mM, or 950-1000 mM. In some cases, the enzymes of the enzyme preparations, cell lysates, and / or reaction mixtures are salt-inactivated at a salt concentration of 600-950 mM, 600-900 mM, 600-850 mM, 600-800 mM, 600-750 mM, 600-700 mM, or 600-650 mM. For example, the enzymes of the enzyme preparations, cell lysates, and / or reaction mixtures may be salt-inactivated at salt concentrations of about 600 mM, 650 mM, 700 mM, 750 mM, 800 mM, 850 mM, 900 mM, 950 mM, or 1000 mM. The enzymes of the enzyme preparations, cell lysates, and / or reaction mixtures as provided herein may be salt-inactivated at salt concentrations of 400-0 mM, or lower.In some cases, the enzymes in the enzyme preparations, cell lysates, and / or reaction mixtures are salt-inactivated at a salt concentration of 350-0 mM, 300-0 mM, 250-0 mM, 200-0 mM, 150-0 mM, 100-0 mM, or 50-0 mM. In some cases, the enzymes in the enzyme preparations, cell lysates, and / or reaction mixtures are salt-inactivated at a salt concentration of 400-50 mM, 400-100 mM, 400-150 mM, 400-200 mM, 400-250 mM, 400-300 mM, or 400-350 mM. For example, the enzymes of the enzyme preparation, cell lysate, and / or reaction mixture may be salt-inactivated at a salt concentration of about 400 mM, 350 mM, 300 mM, 250 mM, 200 mM, 150 mM, 100 mM, 50 mM, or 0 mM.
[0095] In some cases, organic solvents are added to enzyme preparations, cell lysates, and / or reaction mixtures to inactivate enzymes that exhibit undesired activity. Non-limiting examples of organic solvents include ethanol, methanol, ether, dioxane, acetone, methyl ethyl ketone, acetonitrile, dimethyl sulfoxide, and toluene. In some cases, detergents are added to enzyme preparations, cell lysates, and / or reaction mixtures to inactivate enzymes that exhibit undesirable activities. Non-limiting examples of detergents include sodium dodecyl sulfate (SDS), ethyltrimethylammonium bromide (ETMAB), lauryltrimethylammonium bromide (LTAB), and lauryltrimethylammonium chloride (LTAC).
[0096] In some cases, chemical inhibitors are added to enzyme preparations, cell lysates, and / or reaction mixtures to inactivate enzymes that exhibit undesired activity.Non-limiting examples of chemical inhibitors include sodium orthovanadate (an inhibitor of protein phosphotyrosyl phosphatases), sodium fluoride (an inhibitor of phosphoseryl and phosphothreonyl phosphatases), sodium pyrophosphate (a phosphatase inhibitor), sodium phosphate, and / or potassium phosphate.In some cases, chemical inhibitors are selected from a chemical inhibitor library.
[0097] For any of the conditioning approaches used herein, it should be understood that any of the pathway enzymes present in the cell lysate or reaction mixture may also be exposed to removal conditions (e.g., high or low temperatures, acidic or basic pH values, high or low salt, detergents and / or organic solvents). Thus, in some cases, pathway enzymes (e.g., polyphosphate kinase, NMP kinase, NDP kinase, and / or polymerase) can survive the removal conditions. An enzyme is considered to survive the removal conditions if it retains at least 10% (e.g., at least 20%, at least 30%, at least 40%, at least 50%, at least 60%, at least 70%, at least 80%, or at least 90%) of its enzymatic activity (compared to the enzymatic activity before exposure to the inactivating conditions) after exposure to the removal conditions.
[0098] For example, a pathway enzyme may be thermostable if the enzyme in the native enzyme preparation, cell lysate, and / or reaction mixture is heat-inactivated (e.g., exposed to temperatures of at least 40°C or 40-95°C for at least 2 minutes or 2-60 minutes). Thus, in some cases, at least one of polyphosphate kinase, NMP kinase, NDP kinase, nucleoside kinase, phosphoribosyltransferase, nucleoside phosphorylase, ribokinase, phosphopentomutase, and polymerase is thermostable. An enzyme (e.g., a kinase or polymerase) is considered thermostable if it (a) retains activity after transient exposure to high temperatures that would denature the native enzyme, or (b) functions at a high rate after transient exposure to moderate to high temperatures at which the native enzyme functions at a low rate. Thermostable enzymes are known, and non-limiting examples of thermostable enzymes for use are provided herein. Other non-limiting examples of pathway enzymes that can withstand removal conditions are also provided herein.
[0099] Separation Approaches. In some cases, native enzymes exhibiting undesired activity are physically removed from enzyme preparations, cell lysates, and / or reaction mixtures. In some cases, enzymes exhibiting undesired activity are precipitated from enzyme preparations, cell lysates, and / or reaction mixtures. In some cases, enzymes exhibiting undesired activity are filtered (e.g., based on size) from enzyme preparations, cell lysates, and / or reaction mixtures. In some cases, enzymes exhibiting undesired activity are removed from enzyme preparations, cell lysates, and / or reaction mixtures via capture and / or chromatography (e.g., by differential affinity to a stationary phase).
[0100] In some cases, enzymes exhibiting undesired activities are removed from enzyme preparations, cell lysates, and / or reaction mixtures via affinity chromatography, examples of which include, but are not limited to, protein A chromatography, protein G chromatography, metal-binding chromatography (e.g., nickel chromatography), lectin chromatography, and GST chromatography. In some cases, enzymes exhibiting undesired activities are removed from enzyme preparations, cell lysates, and / or reaction mixtures via ion exchange chromatography. Examples of anion exchange chromatography (AEX) include, but are not limited to, diethylaminoethyl (DEAE) chromatography, quaternary aminoethyl (QAE) chromatography, and quaternary amine (Q) chromatography. Examples of cation exchange chromatography include, but are not limited to, carboxymethyl (CM) chromatography, sulfoethyl (SE) chromatography, sulfopropyl (SP) chromatography, phosphate (P) chromatography, and sulfonate (S) chromatography.
[0101] In some cases, enzymes exhibiting undesired activities are removed from enzyme preparations, cell lysates, and / or reaction mixtures via hydrophobic interaction chromatography (HIC). Examples of hydrophobic interaction chromatography include, but are not limited to, phenyl sepharose chromatography, butyl sepharose chromatography, octyl sepharose chromatography, captophenyl chromatography, Toyopearl butyl chromatography, Toyopearl phenyl chromatography, Toyopearl hexyl chromatography, Toyopearl ether chromatography, and Toyopearl PPG chromatography. Any of the chemistries detailed above can alternatively be used to immobilize or capture pathway enzymes.
[0102] Thermostable enzymes Any of the pathway enzymes provided herein (e.g., nucleases, kinases, polymerases, etc.) can be thermostable enzymes. Thermostability refers to the ability of an enzyme to resist denaturation at relatively high or low temperatures. For example, if an enzyme is denatured (inactivated) at a temperature of 42°C, an enzyme with similar activity (e.g., kinase activity) is considered "thermostable" if it is inactive at 42°C. An enzyme (e.g., a kinase or polymerase) is considered thermostable if it (a) retains activity after temporary exposure to high temperatures that would denature an otherwise native enzyme, or (b) functions at a high rate after temporary exposure to moderate to high temperatures at which the native enzyme functions at a low rate.
[0103] An enzyme (e.g., a kinase or polymerase) is also considered thermostable if it (a) retains activity after temporary exposure to low temperatures that would denature an otherwise native enzyme, or (b) functions at a high rate after temporary exposure to moderate to low temperatures at which the native enzyme functions at a low rate. In some cases, a thermostable enzyme retains more than 10% of its activity after transient exposure to relatively high temperatures (e.g., greater than 41°C for kinases obtained from E. coli, greater than 37°C for many RNA polymerases) that would otherwise denature a similar (non-thermostable) native enzyme. In some cases, a thermostable enzyme retains 10-100%, 25-100%, or 50-100% of its activity after transient exposure to relatively high temperatures that would otherwise denature a similar (non-thermostable) native enzyme. For example, a thermostable enzyme may retain 10-90%, 10-85%, 10-80%, 10-75%, 10-70%, 10-65%, 10-60%, 10-55%, 25-90%, 25-85%, 25-80%, 25-75%, 25-70%, 25-65%, 25-60%, 25-55%, 50-90%, 50-85%, 50-80%, 50-75%, 50-70%, 50-65%, 50-60%, or 50-55% of its activity after temporary exposure to relatively high temperatures that would denature an otherwise similar (non-thermostable) native enzyme. In some cases, a thermostable enzyme retains 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, 99%, or 100% activity after temporary exposure to relatively high temperatures that would denature an otherwise similar (non-thermostable) native enzyme.
[0104] In some cases, a thermostable enzyme retains more than 50% activity after transient exposure to relatively low temperatures (e.g., below 32°C for kinases obtained from E. coli and below 32°C for many RNA polymerases) that would otherwise denature a similar (non-thermostable) native enzyme. In some cases, a thermostable enzyme retains 50-100% activity after transient exposure to relatively low temperatures that would otherwise denature a similar (non-thermostable) native enzyme. For example, a thermostable enzyme may retain 50-90%, 50-85%, 50-80%, 50-75%, 50-70%, 50-65%, 50-60%, or 50-55% activity after transient exposure to relatively low temperatures that would otherwise denature a similar (non-thermostable) native enzyme. In some cases, a thermostable enzyme retains 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, 99%, or 100% activity after temporary exposure to relatively low temperatures that would denature an otherwise similar (non-thermostable) native enzyme.
[0105] In some cases, the activity of a thermostable enzyme after transient exposure to moderate to high temperatures (e.g., 42-80°C) is greater (e.g., 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, 99%, or 100% greater) than the activity of a similar (non-thermostable) native enzyme. In some cases, the activity of a thermostable enzyme after temporary exposure to moderate to low temperatures (e.g., 32-0°C) is greater (e.g., 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, 99%, or 100% greater) than the activity of a similar (non-thermostable) native enzyme.
[0106] The activity of a thermostable kinase may be measured, for example, by the amount of NMP or NDP that the kinase can phosphorylate. Thus, in some cases, a thermostable kinase converts more than 50% of NMP to NDP or more than 50% of NDP to NTP at a relatively high temperature (e.g., 42°C) within the same amount of time required to complete a similar conversion at 37°C. In some cases, a thermostable kinase converts more than 60% of NMP to NDP or more than 60% of NDP to NTP at a relatively high temperature (e.g., 42°C) within the same amount of time required to complete a similar conversion at 37°C. In some cases, a thermostable kinase converts more than 70% of NMP to NDP or more than 70% of NDP to NTP at a relatively high temperature (e.g., 42°C) within the same amount of time required to complete a similar conversion at 37°C. In some cases, a thermostable kinase converts greater than 80% of NMP to NDP, or greater than 80% of NDP to NTP, at a relatively high temperature (e.g., 42° C.) in the same amount of time required to complete the analogous conversion at 37° C. In some cases, a thermostable kinase converts greater than 90% of NMP to NDP, or greater than 90% of NDP to NTP, at a relatively high temperature (e.g., 42° C.) in the same amount of time required to complete the analogous conversion at 37° C.
[0107] In some cases, a thermostable kinase converts more than 50% of NMP to NDP or more than 50% of NDP to NTP at a relatively low temperature (e.g., 32°C) in the same amount of time required to complete a similar conversion at 37°C. In some cases, a thermostable kinase converts more than 60% of NMP to NDP or more than 60% of NDP to NTP at a relatively low temperature (e.g., 32°C) in the same amount of time required to complete a similar conversion at 37°C. In some cases, a thermostable kinase converts more than 70% of NMP to NDP or more than 70% of NDP to NTP at a relatively low temperature (e.g., 32°C) in the same amount of time required to complete a similar conversion at 37°C. In some cases, a thermostable kinase converts more than 80% of NMP to NDP or more than 80% of NDP to NTP at a relatively low temperature (e.g., 32°C) in the same amount of time required to complete a similar conversion at 37°C. In some cases, thermostable kinases convert greater than 90% of NMP to NDP, or greater than 90% of NDP to NTP, at relatively low temperatures (e.g., 32°C) in the same amount of time as required to complete a similar conversion at 37°C.
[0108] The activity of the thermostable polymerase is evaluated based on, for example, fidelity and polymerization kinetics (e.g., polymerization rate). Thus, for example, one unit of thermostable T7 polymerase can incorporate 10 nmoles of NTP into an acid-insoluble material at a temperature higher than 37°C (e.g., at 50°C) within 30 minutes. In another example, one unit of thermostable T7 polymerase can incorporate 10 nmoles of NTP into an acid-insoluble material at a temperature lower than 32°C (e.g., at 25°C) within 30 minutes. In some cases, a thermostable enzyme (e.g., a kinase or polymerase) may remain active (capable of catalyzing a reaction) at temperatures between 42° C. and 80° C. or higher. In some cases, a thermostable enzyme remains active at temperatures between 42° C. and 80° C., between 42° C. and 70° C., between 42° C. and 60° C., between 42° C. and 50° C., between 50° C. and 80° C., between 50° C. and 70° C., between 50° C. and 60° C., between 60° C. and 80° C., between 60° C. and 70° C. and 80° C. For example, a thermostable enzyme may remain active at temperatures of 42° C., 43° C., 44° C., 45° C., 46° C., 47° C., 48° C., 49° C., 50° C., 51° C., 52° C., 53° C., 54° C., 55° C., 55° C., 56° C., 57° C., 58° C., 59° C., 60° C., 61° C., 62° C., 63° C., 64° C., 65° C., 66° C., 67° C., 68° C., 69° C., 70° C., 71° C., 72° C., 73° C., 74° C., 75° C., 76° C., 77° C., 78° C., 79° C., or 80° C. A thermostable enzyme may remain active at relatively high temperatures for 15 minutes to 48 hours or longer. For example, a thermostable enzyme may remain active at a relatively high temperature for 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 24, 36, 42, or 48 hours.
[0109] In some cases, a thermostable enzyme (e.g., a kinase or polymerase) may remain active (capable of catalyzing a reaction) at temperatures between 32° C. and 0° C. or lower. In some cases, a thermostable enzyme remains active at temperatures between 32° C. and 5° C., between 32° C. and 10° C., between 32° C. and 20° C., between 32° C. and 25° C., between 32° C. and 30° C., between 30° C. and 0° C., between 25° C. and 0° C., between 20° C. and 0° C., between 10° C. and 0° C., or between 5° C. and 0° C. For example, a thermostable enzyme may remain active at temperatures of 32°C, 31°C, 30°C, 29°C, 28°C, 27°C, 26°C, 25°C, 24°C, 23°C, 22°C, 21°C, 20°C, 19°C, 18°C, 17°C, 16°C, 15°C, 14°C, 13°C, 12°C, 10°C, 9°C, 8°C, 7°C, 6°C, 5°C, 4°C, 3°C, 2°C, 1°C, or 0°C. A thermostable enzyme may remain active at relatively low temperatures for 15 minutes to 48 hours or longer. For example, a thermostable enzyme may remain active at relatively low temperatures for 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 24, 36, 42, or 48 hours.
[0110] Non-limiting examples of thermostable NMP kinases are listed in Tables 4A-4D. Other thermostable kinases include thermostable nucleoside diphosphate kinases (see, e.g., Table 5), thermostable pyruvate kinases, and thermostable polyphosphate kinases (see, e.g., Table 2). Other thermostable kinases are encompassed by the present disclosure. Non-limiting examples of RNA polymerases are listed in Table 6. Other RNA polymerases, including thermostable RNA polymerases, are encompassed by the present disclosure.
[0111] Thermostable RNA polymerases may be prepared by modifying wild-type enzymes. Such modifications (e.g., mutations) are known. For example, variant thermostable T7 RNA polymerases may contain one or more of the following point mutations: V426L, A702V, V795I, S430P, F849I, S633P, F880Y, C510R, and S767G (EP2377928 and EP1261696A1; each of which is incorporated herein by reference). In some cases, variant thermostable T7 RNA polymerases contain V426L, A702V, and V795I mutations. In some cases, variant thermostable T7 RNA polymerases contain S430P, F849I, S633P, and F880Y mutations. In some cases, the variant thermostable T7 RNA polymerase comprises F880Y, S430P, F849I, S633P, C510R, and S767G mutations. In some cases, the variant thermostable T7 RNA polymerase comprises Y639V, H784G, E593G, and V685A mutations. In some cases, the variant thermostable T7 RNA polymerase comprises S430P, N433T, S633P, F849I, and F880Y mutations. Other variant and recombinant thermostable polymerases are encompassed by the disclosure.
[0112] In some cases, a thermostable T7 polymerase is used to generate the target RNA. For example, a thermostable T7 polymerase having a concentration of 0.1-5% of total protein (e.g., incubated at a temperature of 37-60°C) may be used to synthesize the target RNA at a rate greater than 1 g / L / hr (or, for example, 1 g / L / hr to 20 g / L / hr). While many embodiments of the present disclosure describe the use of thermostable polymerases / enzymes, it should be understood that other enzymes / polymerases may be used. In some cases, for example, to compensate for any reduction or loss of activity of a thermostable enzyme, the polymerase may be added exogenously to the heat-inactivated cell lysate.
[0113] fusion enzyme Any of the pathway enzymes provided herein (e.g., nucleases, kinases, polymerases, etc.) may be individual enzymes, enzymes with multiple activities, or fusion enzymes. Fusion enzymes can be created by joining two or more genes or gene segments that encode separate proteins. Translation of the fusion gene results in a single or multiple polypeptides with functional properties derived from each of the original proteins; for example, the fusion protein acts as a nuclease, acts as a kinase, and / or acts as a polymerase. Other enzymes may also be expressed as fusion proteins. Some naturally occurring enzymes are multifunctional (e.g., CMP-UMP kinase), and therefore the term "enzyme" encompasses "enzymatic activities" regardless of how they are provided.
[0114] A fusion enzyme is considered to "act as a nuclease" if it exhibits nuclease activity (cleaving or depolymerizing nucleic acids; e.g., RNase R). A fusion enzyme is considered to "act as a kinase" if it exhibits kinase activity (catalyzing the transfer of a phosphate group from one molecule to another; e.g., polyphosphate kinase). A fusion enzyme is considered to "act as a polymerase" if it exhibits polymerase activity (assembling nucleotides to produce nucleic acids; e.g., RNA polymerase).
[0115] Energy Source There are several energy and phosphate sources that can be used as provided herein for the production of NTPs and / or RNA. Non-limiting examples of phosphate sources include NTPs (e.g., ATP, GTP, UTP, CTP), polyphosphates (e.g., hexametaphosphate), and pyrophosphate (PPi). In some cases, NTPs, whether chemically synthesized, fermented, or extracted from natural sources, are included in the reaction mixture for the production of RNA. In some cases, polyphosphate and polyphosphate kinase are included in the reaction mixture for the production of NTPs and / or RNA. In some cases, acetate, ADP, pyrophosphate, and at least two acetate kinases (e.g., acetate kinase (diphosphate) EC 2.7.2.12 and acetate kinase (phosphorylating) EC.7.2.1) are included in the reaction mixture for the production of NTPs and / or RNA. In some cases, citrate, AMP, pyrophosphate, citrate lyase (citrate lyase complex), phosphoenolpyruvate carboxykinase (PEPCK) or phosphoenolpyruvate carboxylase (PEPC), and pyruvate phosphate dikinase (PPDK) are included in the reaction mixture for the production of NTPs and / or RNA. In some cases, sulfite, AMP, pyrophosphate, adenylyl sulfate reductase, and sulfate adenylyltransferase are included in the reaction mixture for the production of NTPs and / or RNA. Other energy sources are also encompassed by the present disclosure.
[0116] In some cases, the energy source is ATP generated from pyrophosphate through cyclic phosphorylation of acetate, from pyrophosphate and citrate, or from pyrophosphate and sulfite. Methods for generating ATP from the above pathways are described herein. A summary of ATP-generating pathways and pathway enzymes is provided in Table 7 below. Table 7: Summary of exemplary ATP-generating pathways and enzymes [Table 7]
[0117] ATP generation from pyrophosphate and ADP through acetate phosphorylation / dephosphorylation cycles Some aspects of the present disclosure use methods to generate ATP from pyrophosphate (a high-energy phosphate donor) and ADP (the final energy / phosphate acceptor) through an acetate phosphorylation / dephosphorylation cycle (see, e.g., Figure 14). The first acetate kinase (AcK1; EC 2.7.2.12) converts inorganic pyrophosphate (PP i ) to phosphorylate acetate, which produces acetyl-phosphate and inorganic phosphate (P i Acetyl-phosphate is then dephosphorylated by a second acetate kinase (AcK2; EC 2.7.2.1), which transfers a high-energy phosphate group from acetyl-phosphate to ADP, generating ATP and acetate. The resulting acetate is then free to be rephosphorylated by AcK1, thereby completing the reaction cycle.
[0118] In some cases, a method for producing ATP from pyrophosphate and ADP includes culturing cells engineered to express a first acetate kinase, a second acetate kinase, or two different acetate kinases. In some cases, the method includes culturing cells engineered to express a first acetate kinase and a second acetate kinase. In some cases, the first acetate kinase and the second acetate kinase are expressed as a single fusion (chimeric) protein. In some cases, at least one of the enzymes is a thermostable enzyme. In some cases, at least two of the enzymes are thermostable enzymes. In some cases, all of the enzymes are thermostable enzymes. Thus, in some cases, the method comprises culturing cells engineered to express a thermostable acetate kinase. In other embodiments, the method comprises culturing cells engineered to express a first thermostable acetate kinase and a second thermostable acetate kinase.
[0119] In some cases, a method for producing ATP from pyrophosphate through cyclic phosphorylation of acetate includes lysing cultured cells (e.g., by heat, osmotic pressure, mechanical (e.g., sonication), chemical, or enzymatic lysis) to produce at least one (e.g., at least two) cell lysates. It should be understood that multiple cell lysates (and thus multiple cell populations, e.g., from the same organism (e.g., bacteria) or from different organisms (e.g., bacteria, yeast, and / or plants)) may be used in the enzymatic reactions provided herein. For example, one cell population may be engineered to express a first acetate kinase in an ATP-producing pathway, while another cell population may be engineered to express a second acetate kinase in the ATP-producing pathway. Thus, in some cases, the method includes culturing a population of cells engineered to express an acetate kinase and / or culturing a population of cells engineered to express at least one additional acetate kinase. After cell lysis, the cell lysates are combined so that the enzymes are present in a single cell lysate / reaction mixture.
[0120] In some cases, the method for producing ATP from pyrophosphate through cyclic phosphorylation of acetate further includes heating the cell lysate (or cell lysate mixture) to a temperature that inactivates native enzyme activity but does not inactivate any thermostable enzymes in the ATP-producing pathway to produce a heat-inactivated lysate. The cell lysate is, in some cases, heated to a temperature of at least 50°C. For example, the cell lysate may be heated to a temperature of at least 55°C, 60°C, 65°C, 70°C, 75°C, 80°C, 85°C, or 90°C. A native enzyme (or other non-thermostable enzyme) is, in some cases, considered inactivated if its level of activity is reduced by at least 50%. In some cases, a native enzyme (or other non-thermostable enzyme) is considered inactivated if its level of activity is reduced by at least 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100%.
[0121] The cell lysate may be heated for a period of time sufficient to inactivate the native enzymes (or other non-thermostable enzymes) of the cells. For example, the cell lysate may be heated for at least 2, 3, 4, or at least 5 minutes. In some cases, the cell lysate is heated for more than 5 minutes. In some cases, the cell lysate is heated for more than 15 minutes. In some cases, the cell lysate is heated for less than 2 hours. In some cases, the cell lysate is heated for a period of time sufficient to reduce the activity of the native enzymes (or other non-thermostable enzymes) by at least 50% (e.g., at least 60%, 70%, 80%, or 90%).
[0122] Following heat inactivation, in some cases, at least one (e.g., at least two or at least three) purified enzymes may be added to the cell lysate / reaction mixture. Thus, the reaction mixture may in some cases include a combination of enzymes present in the cell lysate (expressed by the engineered host cell) and at least one purified enzyme. The at least one purified enzyme may be a first acetate kinase and / or a second acetate kinase. In some cases, the cell lysate may be cooled (e.g., to 50°C) after the heat inactivation step and before adding the purified enzymes. In some cases, the method for producing ATP from pyrophosphate through cyclic phosphorylation of acetate also includes incubating a heat-inactivated lysate in the presence of acetate, adenosine diphosphate (ADP), and inorganic phosphate to produce ATP. The inorganic phosphate may be, for example, pyrophosphate. Other inorganic phosphates and / or orthophosphate polymers may also be used, including, but not limited to, tripolyphosphate, tetrapolyphosphate, pentapolyphosphate, hexametaphosphate, and mixtures thereof.
[0123] Also included herein are cells and cell lysates that are used for the generation of ATP from pyrophosphate through the cyclic phosphorylation of acetate.Therefore, the engineered cells (e.g., bacterial cells, yeast cells, and / or plant cells) or cell lysates of the present disclosure may contain at least one (e.g., at least two) acetate kinases.In some cases, the engineered cells (e.g., bacterial cells, yeast cells, and / or plant cells) or cell lysates of the present disclosure contain at least one (e.g., at least two) thermostable acetate kinases. Table 8. Exemplary acetate kinase enzymes [Table 8]
[0124] ATP generation from pyrophosphate, AMP, and citrate Some aspects of the present disclosure use methods for generating ATP from pyrophosphate, AMP, and citrate (see, e.g., Figures 15A-15B). A three-step enzymatic pathway is shown in Figure 15A. In the first step, citrate lyase converts citrate to acetate and oxaloacetate. In the second step, phosphoenolpyruvate carboxykinase (PEPCK) converts the pyrophosphate and oxaloacetate produced in the first step to phosphoenolpyruvate (PEP), carbon dioxide (CO), and inorganic phosphate (P). i In the third step, pyruvate phosphate dikinase (PPDK) converts the inorganic pyrophosphate (PP i ), AMP and PEP, pyruvate, P i and converts it into ATP. The combined chemical reaction is 1 mole of citric acid, 1 mole of AMP, and 2 moles of PP i Using 1 mole of acetic acid, 1 mole of pyruvic acid, 1 mole of CO2, 2 moles of P iand 1 mole of ATP (Figure 15B). Alternatively, phosphoenolpyruvate carboxylase (PEPC) can be used to catalyze the carboxylation of PEP to oxaloacetate, which can be reversible under certain conditions.
[0125] These methods, in some cases, involve culturing cells engineered to express citrate lyase, PEPCK (or at least one PEPC), PPDK, or a combination of at least two or at least three of the foregoing enzymes. In some cases, citrate lyase and PEPCK (or PEPC), PEPCK (or PEPC) and PPDK, or citrate lyase and PPDK are expressed as a single fusion (chimeric) protein. In some cases, at least one of the enzymes is a thermostable enzyme. In some cases, at least two or at least three of the enzymes are thermostable enzymes. In some cases, all of the enzymes are thermostable enzymes. Thus, in some cases, the method includes culturing a cell engineered to express thermostable citrate lyase, thermostable PEPCK, PPDK, or a combination of at least two or at least three of the aforementioned thermostable enzymes.
[0126] In some cases, the method for producing ATP from citrate includes lysing cultured cells (e.g., by heat, osmotic, mechanical (e.g., sonication), chemical, or enzymatic lysis) to produce at least one (e.g., at least two, or three) cell lysates. It should be understood that multiple cell lysates (and thus multiple cell populations, for example, from the same organism (e.g., bacteria) or from different organisms (e.g., bacteria, yeast, and / or plant cells)) may be used in the enzymatic reaction provided herein. For example, one cell population may be engineered to express one or more enzymes of an ATP-producing pathway, and another cell population (or several other cell populations) may be engineered to express another (at least one other) enzyme of the ATP-producing pathway. Thus, in some cases, the method includes culturing a population of cells engineered to express citrate lyase, culturing a cell population engineered to express PEPCK (thermostable PEPCK), and / or culturing a cell population engineered to express PPDK. After cell lysis, the cell lysates are combined so that the enzymes are present in a single cell lysate / reaction mixture.
[0127] In some cases, the method for producing ATP from citrate further includes heating the cell lysate (or cell lysate mixture) to a temperature that inactivates native enzyme activity but does not inactivate any thermostable enzymes in the ATP-producing pathway to produce a heat-inactivated lysate. The cell lysate is, in some cases, heated to a temperature of at least 50°C. For example, the cell lysate may be heated to a temperature of at least 55°C, 60°C, 65°C, 70°C, 75°C, 80°C, 85°C, or 90°C. A native enzyme (or other non-thermostable enzyme) is, in some cases, considered inactivated if its level of activity is reduced by at least 50%. In some cases, a native enzyme (or other non-thermostable enzyme) is considered inactivated if its level of activity is reduced by at least 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100%.
[0128] The cell lysate may be heated for a period of time sufficient to inactivate the native enzymes (or other non-thermostable enzymes) of the cells. For example, the cell lysate may be heated for at least 2, 3, 4, or at least 5 minutes. In some cases, the cell lysate is heated for longer than 5 minutes. In some cases, the cell lysate is heated for a period of time sufficient to reduce the activity of the native enzymes (or other non-thermostable enzymes) by at least 50% (e.g., at least 60%, 70%, 80%, or 90%).
[0129] Following heat inactivation, in some cases, at least one (e.g., at least two or at least three) purified enzymes may be added to the cell lysate / reaction mixture. Thus, the reaction mixture, in some cases, may include a combination of enzymes present in the cell lysate (expressed by the engineered host cell) and at least one purified enzyme. The at least one purified enzyme may be selected from the group consisting of citrate lyase, PEPCK (or PEPC), and PPDK. In some cases, the cell lysate may be cooled (e.g., to 50°C) after the heat inactivation step and before adding the purified enzyme. In some cases, the method for producing ATP from citrate also includes incubating a heat-inactivated lysate in the presence of citrate, adenosine monophosphate (AMP), and inorganic phosphate to produce ATP. The inorganic phosphate may be, for example, pyrophosphate. Other inorganic phosphates and / or orthophosphate polymers may also be used, including, but not limited to, tripolyphosphate, tetrapolyphosphate, pentapolyphosphate, hexametaphosphate, and mixtures thereof.
[0130] Also included herein are cells and cell lysates used for producing ATP from citrate.Thus, the engineered cells (e.g., bacterial cells, yeast cells, and / or plant cells) or cell lysates of the present disclosure may contain at least one (e.g., at least two or at least three) enzymes selected from the group consisting of citrate lyase, PEPCK (or PEPC) and PPDK.In some cases, the engineered cells (e.g., bacterial cells, yeast cells, and / or plant cells) or cell lysates of the present disclosure contain at least one (e.g., at least two or at least three) enzymes selected from the group consisting of thermostable citrate lyase, thermostable PEPCK (or thermostable PEPC) and thermostable PPDK. Table 9. ATP production from exemplary pyrophosphate and citrate pathway enzymes [Table 9]
[0131] ATP production from pyrophosphate, AMP, and sulfite Some aspects of the present disclosure use a method for producing ATP from pyrophosphate, AMP, and sulfite (see, e.g., Figure 16). In the first step, adenylyl sulfate reductase converts adenosine monophosphate (AMP) to adenosine 5'-phosphosulfate (APS), which involves the consumption of sulfite. In the second step, sulfate adenylyltransferase catalyzes the conversion of APS to sulfate, which involves the generation of ATP and the consumption of pyrophosphate. In some cases, the method of generating ATP from pyrophosphate, AMP, and sulfite includes culturing cells engineered to express adenylyl sulfate reductase, sulfate adenylyltransferase, or a combination of adenylyl sulfate reductase and sulfate adenylyltransferase. In some cases, the adenylyl sulfate reductase and sulfate adenylyltransferase are expressed as a single fusion (chimeric) protein or as a bifunctional protein.
[0132] In some cases, a reducing agent may be added to act as an electron sink. Examples of such reducing agents include, but are not limited to, dithiothreitol (DTT) or glutathione or ferricyanide or dithioerythritol or tris-2-carboxyethylphosphine hydrochloride (TCEP). Individual enzymes differ in their cofactor preferences, but NAD + , NADPH + There may be cases where biological cofactors, such as NADH or NADPH, can be used by one enzyme to absorb these electrons. In these cases, cofactors such as these may also be included. In some cases, at least one of the enzymes is a thermostable enzyme. In some cases, at least two of the enzymes are thermostable enzymes. In some cases, all of the enzymes are thermostable enzymes. Thus, in some cases, the method includes culturing cells engineered to express a thermostable adenylyl sulfate reductase and a thermostable sulfate adenylyltransferase.
[0133] In some cases, methods for producing ATP from sulfite include lysing cultured cells (e.g., by heat, osmotic, mechanical (e.g., sonication), chemical, or enzymatic lysis) to produce at least one (e.g., two, three, four, or five) cell lysates. It should be understood that multiple cell lysates (and thus multiple cell populations, e.g., from the same organism (e.g., bacteria) or from different organisms (e.g., bacteria, yeast, and / or plants)) may be used in enzymatic reactions as provided herein. For example, one cell population may be engineered to express adenylyl sulfate reductase, while another cell population (or multiple other cell populations) may be engineered to express sulfate adenylyltransferase. Thus, in some cases, the method includes culturing a population of cells engineered to express adenylyl sulfate reductase and / or culturing a population of cells engineered to express sulfate adenylyltransferase. After cell lysis, the cell lysates are combined so that the enzymes are present in a single cell lysate / reaction mixture.
[0134] In some cases, the method for producing ATP from sulfite further includes heating the cell lysate (or cell lysate mixture) to a temperature that inactivates native enzyme activity but does not inactivate any thermostable enzymes in the ATP-producing pathway to produce a heat-inactivated lysate. The cell lysate is, in some cases, heated to a temperature of at least 50°C. For example, the cell lysate may be heated to a temperature of at least 55°C, 60°C, 65°C, 70°C, 75°C, 80°C, 85°C, or 90°C. A native enzyme (or other non-thermostable enzyme) is, in some cases, considered inactivated if its level of activity is reduced by at least 50%. In some cases, a native enzyme (or other non-thermostable enzyme) is considered inactivated if its level of activity is reduced by at least 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100%.
[0135] The cell lysate may be heated for a period of time sufficient to inactivate the native enzymes (or other non-thermostable enzymes) of the cells. For example, the cell lysate may be heated for at least 2, 3, 4, or at least 5 minutes. In some cases, the cell lysate is heated for longer than 5 minutes. In some cases, the cell lysate is heated for a period of time sufficient to reduce the activity of the native enzymes (or other non-thermostable enzymes) by at least 50% (e.g., at least 60%, 70%, 80%, or 90%).
[0136] Following heat inactivation, in some cases, at least one (e.g., at least two or at least three) purified enzymes may be added to the cell lysate / reaction mixture. Thus, the reaction mixture, in some cases, may include a combination of cell lysate, enzymes present in the cell lysate (expressed by the engineered host cell), and at least one purified enzyme. The at least one purified enzyme may be a first acetate kinase and / or a second acetate kinase. In some cases, the cell lysate may be cooled (e.g., to 50°C) after the heat inactivation step and before adding the purified enzymes. In some cases, the method for producing ATP from sulfite also includes incubating a heat-inactivated lysate in the presence of sulfite, adenosine monophosphate (AMP), and inorganic phosphate to produce ATP. The inorganic phosphate may be, for example, pyrophosphate. Other inorganic phosphates and / or orthophosphate polymers may also be used, including, but not limited to, tripolyphosphate, tetrapolyphosphate, pentapolyphosphate, hexametaphosphate, and mixtures thereof.
[0137] Also included herein are cells and cell lysates used for the production of ATP. Thus, the engineered cells (e.g., bacterial cells, yeast cells, and / or plant cells) or cell lysates of the present disclosure may contain at least one (e.g., at least two) adenylyl sulfate reductase and / or at least one sulfate adenylyltransferase. In some cases, the engineered cells (e.g., bacterial cells, yeast cells, and / or plant cells) or cell lysates of the present disclosure contain at least one (e.g., at least two, at least three, or at least four) thermostable adenylyl sulfate reductase and / or at least one thermostable sulfate adenylyltransferase. Table 10. ATP production from exemplary pyrophosphate, AMP, and sulfite pathway enzymes [Table 10]
[0138] Depolymerization of cellular RNA In some cases, cellular RNA serves as a substrate for the production of NTPs and / or RNA. Depolymerization (degradation) of cellular RNA results in a pool containing nucleoside diphosphates (NDPs) or 5'-nucleoside monophosphates (5'-NMPs), depending on the enzyme used for depolymerization. Cellular RNA is depolymerized to NDPs, in some cases, using, for example, polynucleotide phosphorylase (PNPase) (see, e.g., Table 1). In some cases, the concentration of PNPase used in the reaction mixture is 0.001-10 mg / mL (e.g., 0.001, 0.01, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 5, or 10 mg / mL). In some cases, the concentration of PNPase in the reaction mixture is 0.5-5 mg / mL. In some cases, the concentration of PNPase in the reaction mixture is 5 mg / mL. In some cases, the concentration of PNPase in the reaction mixture is greater than 10 mg / mL.
[0139] In other embodiments, cellular RNA is depolymerized into NMPs using, for example, a nuclease (e.g., RNase R or P1 nuclease) (see, e.g., Table 1). Depending on the enzyme, enzymatic depolymerization of RNA can produce 3'-NMPs, 5'-NMPs, or a combination of 3'-NMPs and 5'-NMPs. Because 3'-NTPs (converted from 3'-NDPs converted from 3'-NMPs) cannot be polymerized, enzymes (e.g., RNase R and / or P1 nuclease) that produce 5'-NMPs (which are then converted to 5'-NDPs and then converted to 5'-NTPs) are preferred. In some cases, the concentration of the nuclease (e.g., RNase R and / or P1 nuclease) used in the reaction mixture is 0.001-10 mg / mL (e.g., 0.001, 0.01, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 5, or 10 mg / mL). In some cases, the concentration of the nuclease in the reaction mixture is 0.0.5-5 mg / mL. In some cases, the concentration of the nuclease in the reaction mixture is 5 mg / mL. In some cases, the concentration of the nuclease in the reaction mixture is greater than 10 mg / mL.
[0140] The PNPase and / or RNase, in some cases, is obtained from or is a component of a cell lysate of cells that express the PNPase and / or RNase. The amount of cellular RNA required to synthesize a desired RNA product can vary, depending, for example, on the length and yield of the desired RNA product, as well as the nucleotide composition of the RNA product compared to that of the cellular RNA starting material. Typically, for example, bacterial or yeast cells, the cellular RNA content ranges from 5 to 50% of the total cell mass. The percentage of total cell mass can be calculated, for example, using the following formula: (kilograms of RNA / kilograms of dry cell weight (kg)) x 100%.
[0141] Conditions suitable for the production of NMPs and NDPs are known in the art or can be determined by those skilled in the art, taking into account optimal conditions for nuclease (e.g., RNase) activity, including, for example, the pH of the reaction mixture (e.g., pH 3-8), temperature (e.g., 15°C-70°C), time length (e.g., 5 minutes-72 hours), and salt concentration (e.g., sodium chloride, potassium chloride, sodium acetate, potassium acetate at concentrations of 5 mM-1 M), as well as any exogenous cofactors. In some cases, a buffer is added to the cell lysate, for example, to achieve a specific pH and / or salt concentration. Examples of buffers include, but are not limited to, phosphate buffer, Tris buffer, MOPS buffer, HEPES buffer, citrate buffer, acetate buffer, malate buffer, MES buffer, histidine buffer, PIPES buffer, Bis-Tris buffer, and ethanolamine buffer.
[0142] In some cases, the reaction mixture during the RNA depolymerization reaction is incubated at a temperature of 37°C for 24 hours. In some cases, the reaction mixture during the RNA depolymerization reaction is incubated at a temperature of 37°C for 5 to 30 minutes. In some cases, the reaction mixture during the RNA depolymerization reaction has a pH of 7.0 and is incubated at a temperature of 37°C for 15 minutes. In some cases, the reaction mixture during the RNA depolymerization reaction may be incubated under conditions that result in greater than 65% conversion of RNA to NDP or RNA to 5'-NMP. In some cases, the RNA is converted to NDP or 5'-NMP at a rate of 50 mM / hr, 100 mM / hr, or 200 mM / hr (or at least this rate). In other embodiments, the reaction mixture during the RNA depolymerization reaction is incubated at a higher temperature (e.g., 50°C to 70°C), as in Example 5.
[0143] Polymerization of RNA products In some cases, NTP, whether produced by the method provided herein or supplied from a commercial source, is used in the biosynthetic pathway for the production of the target RNA product.The DNA designed to encode the RNA product serves as a template for the synthesis of RNA.In some cases, the DNA template may be engineered to have a transcription promoter that selectively drives the transcription of the target RNA.The polymerization of RNA requires NTP, a DNA template containing a transcription promoter, and a polymerase (e.g., RNA polymerase) specific to the transcription promoter.Typically, the polymerase for use as provided herein is a single-subunit polymerase, which is highly selective for its cognate transcription promoter, has high fidelity, and is highly efficient. In some cases, the concentration of the DNA template in the reaction mixture is 0.001-10 μg / μl, or 0.001 μg / μl, 0.05 μg / μl, 0.1 μg / μl, 0.5 μg / μl, 1.0 μg / μl, 5 μg / μl, or 10 μg / μl.
[0144] Suitable conditions for RNA production are known in the art or can be determined by those skilled in the art, taking into account optimal conditions for polymerase (e.g., T7 RNA polymerase) activity, including, for example, the pH of the reaction mixture (e.g., pH 3-8), temperature (e.g., 15°C-70°C), time length (e.g., 5 minutes-72 hours), and salt concentration (e.g., sodium chloride, potassium chloride, sodium acetate, potassium acetate at concentrations of 5 mM-1 M), as well as any exogenous cofactors. In some cases, a buffer is added to the cell lysate, for example, to achieve a specific pH value and / or salt concentration. Examples of buffers include, but are not limited to, phosphate buffer, Tris buffer, MOPS buffer, HEPES buffer, citrate buffer, acetate buffer, malate buffer, MES buffer, histidine buffer, PIPES buffer, Bis-Tris buffer, and ethanolamine buffer. In some cases, the reaction mixture during the RNA depolymerization reaction is incubated for 0.5 to 24 hours at a temperature of 37° C. In some cases, the reaction mixture during the RNA depolymerization reaction is incubated for 0.5 to 24 hours at a temperature of 50° C.
[0145] Cells and cell lysates The cells of the disclosure, in some cases, express cellular RNA, enzymes that depolymerize RNA (e.g., RNases), pathway enzymes (e.g., recombinant enzymes such as polyphosphate kinase), and / or polymerases (e.g., RNA polymerase). In some cases, the engineered cells comprise a DNA template comprising a promoter, and optionally a transcription terminator, operably linked to a nucleotide sequence encoding the desired RNA product. In some cases, the cell is an engineered cell. An engineered cell is a cell that contains an engineered (e.g., recombinant or synthetic) nucleic acid or that has been otherwise modified so that it is structurally and / or functionally distinguishable from its naturally occurring counterpart. Thus, a cell that contains an engineered nucleic acid is considered an "engineered cell."
[0146] A cell "expresses" a product encoded by a nucleic acid (e.g., an engineered nucleic acid) when that product is produced in the cell. Gene expression is known in the art to refer to the process by which a gene's instructions in the form of a nucleic acid are used to synthesize a product, such as a protein (e.g., an enzyme). The cell may be a prokaryotic or eukaryotic cell, in some cases the cell is a bacterial cell, a yeast cell, an insect cell, a mammalian cell, a plant cell, or other type of cell.
[0147] Bacterial cells of the present disclosure include, but are not limited to, Escherichia spp., Streptomyces spp., Zymomonas spp., Acetobacter spp., Citrobacter spp., Synechocystis spp., Rhizobium spp., Clostridium spp., Corynebacterium spp., Streptococcus spp., Xanthomonas spp., Lactobacillus spp., Lactococcus spp., Bacillus spp., Alcaligenes spp., Pseudomonas spp., Aeromonas spp., Azotobacter spp., Comamonas spp., Mycobacterium spp., Rhodococcus spp., Gluconobacter spp., Ralstonia spp., and the like. spp., Acidithiobacillus spp., Microlunatus spp., Geobacter spp., Geobacillus spp., Arthrobacter spp., Flavobacterium spp., Serratia spp., Saccharopolyspora spp., Thermus spp., Stenotrophomonas spp., Chromobacterium spp., Sinorhizobium spp., Saccharopolyspora spp., Agrobacterium spp., Pantoea spp. and Vibrio natriegens. Yeast cells of the present disclosure include, but are not limited to, engineered Saccharomyces spp., Schizosaccharomyces, Hansenula, Candida, Kluyveromyces, Yarrowia, and Pichia.
[0148] In some cases, the cell of the disclosure is an Escherichia coli cell, a Bacillus subtilis cell, a Pseudomonas putida cell, a Saccharomyces cerevisiae cell, or a Lactobacillus brevis cell. In some cases, the cell of the disclosure is an Escherichia coli cell. Typically, cells are cultured. Culturing is the process of growing cells under controlled conditions, typically outside their natural environment. For example, cells such as bacterial cells may be grown as a cell suspension in a liquid nutrient broth (also referred to as a liquid culture medium).
[0149] Examples of commonly used culture media for the bacterium Escherichia coli include, but are not limited to, the following: LB (Lysogeny Broth) Miller Broth (1% NaCl): 1% peptone, 0.5% yeast extract, and 1% NaCl; LB (Lysogeny Broth) Lennox Broth (0.5% NaCl): 1% peptone, 0.5% yeast extract, and 0.5% NaCl; SOB Medium (Super Optimal Broth): 2% peptone, 0.5% yeast extract, 10 mM NaCl, 2.5 mM KCl, 10 mM MgCl2, 10 mM MgSO4; SOC Medium (Super Optimal broth with Catabolic repressor): SOB + 20 mM glucose; 2x YT Broth (2x Yeast Extract and Tryptone): 1.6% peptone, 1% yeast extract, and 0.5% NaCl; TB (Terrific Broth) medium: 1.2% peptone, 2.4% yeast extract, 72 mM KHPO, 17 mM KHPO, and 0.4% glycerol; and SB (Super Broth) medium: 3.2% peptone, 2% yeast extract, and 0.5% NaCl and / or Korz medium (Korz, DJ et al. 1995). Examples of high density bacterial Escherichia coli growth media include, but are not limited to, DNAGro™ Medium, ProGro™ Medium, AutoX™ Medium, DetoX™ Medium, InduX™ Medium, and SecPro™ Medium.
[0150] In some cases, the cells are cultured under conditions that result in expression of the enzyme or nucleic acid. Such culture conditions can depend on the particular product being expressed and the amount of product desired. In some cases, the cells are cultured at a temperature between 30° C. and 40° C. For example, engineered cells may be cultured at a temperature of 30° C., 31° C., 32° C., 33° C., 34° C., 35° C., 36° C., 37° C., 38° C., 39° C., or 40° C. Typically, cells, such as engineered E. coli cells, are cultured at a temperature of 37° C. In some cases, the cells are cultured for 12 to 72 hours or longer. For example, engineered cells may be cultured for a period of 12, 18, 24, 30, 36, 42, 48, 54, 60, 66, or 72 hours. Typically, cells, such as engineered bacterial cells, are cultured for a period of 12 to 24 hours. In some cases, the cells are cultured at a temperature of 37° C. for 12 to 24 hours.
[0151] In some cases, the cells were grown at 600 nm (OD 600 ) is grown (e.g., in liquid cell culture medium) until the optical density is between 5 and 200, as measured at a wavelength of 5, 10, 15, 20, 25, 50, 75, 100, 150, or 200. 600 It is cultivated until In some cases, cells were cultured at 1 x 10 per ml of cell culture medium. 8 (OD 600 <1)~2×10 11 The cells are cultured to a viable cell density of 1 x 10 (OD ~ 200). In some cases, the cells are cultured to a viable cell density of 1 x 10 8 , 2 × 10 8 , 3×10 8 , 4×108 , 5×10 8 , 6×10 8 , 7×10 8 , 8×10 8 , 9×10 8 , 1×10 9 , 2 × 10 9 , 3×10 9 , 4×10 9 , 5×10 9 , 6×10 9 , 7×10 9 , 8×10 9 , 9×10 9 , 1×10 10 , 2 × 10 10 , 3×10 10 , 4×10 10 , 5×10 10 , 6×10 10 , 7×10 10 , 8×10 10 , 9×10 10 , 1×10 11 or 2×10 11 The cells are cultured to a density of 8 x 10 viable cells / ml (transformation factor: OD = 8 x 10 8 cells / ml). In some cases, cells are cultured in a bioreactor. A bioreactor simply refers to a container, such as a flask, dish, or bag, in which cells are cultured, which may be single-use (disposable), autoclavable, or sterilizable. Bioreactors may be made of glass, polymer-based, or other materials.
[0152] Examples of bioreactors include, without limitation, stirred tank (e.g., well-mixed) and tubular (e.g., plug flow) bioreactors, airlift bioreactors, membrane stirred tanks, spin filter stirred tanks, vibromixers, fluidized bed reactors, and membrane bioreactors. The mode of operation of the bioreactor may be a batch or continuous process and will depend on the engineered cells being cultured. A bioreactor is continuous when feed and product streams are continuously supplied and removed from the system. A batch bioreactor may have a continuous recirculation stream, but does not have a continuous nutrient supply or product harvest. For intermittent-harvest and fed-batch (or batch-fed) cultures, cells are inoculated into a medium at a lower viable cell density similar to that in the composition for batch medium. Cells are grown exponentially, essentially without external manipulation, until nutrients are slightly depleted and the cells approach stationary growth phase. At this point, for an intermittent-batch fed-batch process, a portion of the cells and product are harvested and the removed culture medium is replenished with fresh medium. This process may be repeated several times. A fed-batch process is used for the production of recombinant proteins and antibodies. While cells grow exponentially, nutrients begin to become depleted. To provide additional nutrients, concentrated feed medium (e.g., 10-15x concentrated basal medium) is added continuously or intermittently, allowing for further increases in cell concentration and further extension of the production phase. Fresh medium may be added in proportion to the cell concentration without removing the culture medium (broth). To accommodate medium addition, the fed-batch culture is initiated at a volume much lower than the full capacity of the bioreactor (e.g., approximately 40%-50% of the maximum volume).
[0153] Some methods of the present disclosure are directed to large-scale (commercial-scale) production of RNA (e.g., mRNA). For large-scale production methods, cells may be grown in liquid culture medium in volumes of 5 liters (L) to 250,000 L, or more. In some cases, cells are grown in liquid culture medium in volumes greater than (or equal to) 10 L, 100 L, 1000 L, 10,000 L, or 100,000 L. In some cases, cells are grown in liquid culture medium in volumes of 5 L, 10 L, 15 L, 20 L, 25 L, 30 L, 35 L, 40 L, 45 L, 50 L, 100 L, 500 L, 1000 L, 5000 L, 10,000 L, 100,000 L, 150,000 L, 200,000 L, 250,000 L, or more. In some cases, cells may be grown in liquid culture medium in volumes of 5 L to 10 L, 5 L to 15 L, 5 L to 20 L, 5 L to 25 L, 5 L to 30 L, 5 L to 35 L, 5 L to 40 L, 5 L to 45 L, 10 L to 15 L, 10 L to 20 L, 10 L to 25 L, 20 L to 30 L, 10 L to 35 L, 10 L to 40 L, 10 L to 45 L, 10 L to 50 L, 15 L to 20 L, 15 L to 25 L, 15 L to 30 L, 15 L to 35 L, 15 L to 40 L, 15 L to 45 L, or 15 L to 50 L. In some cases, the cells may be grown in liquid culture medium in volumes of 100 L to 300,000 L, 100 L to 200,000 L, or 100 L to 100,000 L.
[0154] Typically, after cell culture, the cells are lysed. Lysis is a process of disrupting cells, for example, by viral, thermal, chemical, enzymatic, mechanical, or osmotic mechanisms. A cell lysate is a liquid containing the contents of lysed cells (e.g., lysed engineered cells), including, for example, organelles, membrane lipids, proteins, nucleic acids, and inverted membrane vesicles. The cell lysate of the present disclosure may be purified by lysing any population of engineered cells as provided herein. Cell lysis can disrupt the carefully controlled cellular environment and lead to uncontrolled degradation and modification of proteins by endogenous proteases and phosphatases. Therefore, in some cases, protease inhibitors and / or phosphatase inhibitors and / or nuclease inhibitors and / or hydrolase inhibitors and / or deaminase inhibitors can be added to cell lysates or cells before lysis, or these activities can be eliminated by heat inactivation, gene inactivation or protease targeting.
[0155] In some cases, the cell lysate may be combined with nutrients. For example, the cell lysate may be combined with Na2HPO4, KH2PO4, NH4Cl, NaCl, MgSO4, CaCl2. Examples of other nutrients include, but are not limited to, magnesium sulfate, magnesium chloride, magnesium orotate, magnesium citrate, potassium dihydrogen phosphate, potassium monohydrogen phosphate, tripotassium phosphate, sodium dihydrogen phosphate, sodium monohydrogen phosphate, trisodium phosphate, ammonium dihydrogen phosphate, ammonium monohydrogen phosphate, ammonium sulfate, ammonium chloride, and ammonium hydroxide. The cell lysate may in some cases be combined with cofactors, for example, adenosine diphosphate (ADP), adenosine triphosphate (ATP), nicotinamide adenine dinucleotide (NAD+), or other non-protein chemical compounds required for enzyme activity (e.g., inorganic ions and coenzymes). The volume of cell lysate used for a single reaction can vary. In some cases, the volume of cell lysate ranges from 0.001 to 250 ml. 3 is.
[0156] nucleic acid A "nucleic acid" is at least two nucleotides covalently linked together, which in some cases may include a phosphodiester bond (e.g., a phosphodiester "backbone"). Nucleic acids (e.g., nucleic acid components or portions) can be naturally occurring or engineered. A "naturally occurring" nucleic acid is present in cells that exist in nature, in the absence of human intervention. "Engineered nucleic acids" include recombinant and synthetic nucleic acids. "Recombinant nucleic acid" refers to a molecule constructed by linking nucleic acid molecules (e.g., from the same species or from different species), typically capable of replication in living cells. "Synthetic nucleic acid" refers to a molecule that is biologically synthesized, chemically synthesized, or synthesized or amplified by other means. Synthetic nucleic acids include chemically modified or otherwise modified nucleic acids, but that are capable of base pairing with naturally occurring nucleic acid molecules. Recombinant and synthetic nucleic acids also include molecules resulting from replication of any of the foregoing. An engineered nucleic acid may include portions of a naturally occurring nucleic acid, but as a whole, the engineered nucleic acid does not occur in nature and requires human intervention. In some cases, the nucleic acid encoding the product of the disclosure is a recombinant or synthetic nucleic acid. In other embodiments, the nucleic acid encoding the product is naturally occurring.
[0157] The engineered DNA template encoding the RNA as provided herein may be operably linked to a promoter, a regulatory region of the nucleic acid, which controls the initiation and rate of transcription of the remainder of the nucleic acid. A promoter drives the expression or transcription of the nucleic acid it controls. A promoter may be one that is naturally associated with a gene or sequence, which may be obtained by isolating the 5' non-coding sequences located upstream of the coding segment of a given gene or sequence. Such a promoter may be endogenous.
[0158] In some cases, a coding nucleic acid sequence may be under the control of a recombinant or heterologous promoter, which refers to a promoter that is not normally associated with the coded sequence in its natural environment. Such promoters may include promoters of other genes; promoters isolated from any other cell; and synthetic promoters or enhancers that are not "naturally occurring," such as those that contain different elements of different transcriptional regulatory regions and / or mutations that alter expression through genetic engineering methods known in the art. In addition to producing promoter and enhancer nucleic acid sequences synthetically, the sequences can be produced using recombinant cloning and / or nucleic acid amplification techniques, including polymerase chain reaction (PCR). A promoter is considered to be operably linked to a nucleotide sequence when it is in the correct functional location and orientation relative to the nucleotide sequence it regulates to control ("drive") transcription initiation and / or expression of that nucleotide sequence.
[0159] The engineered nucleic acids of the present disclosure may include a constitutive promoter or an inducible promoter. In some cases, the constitutive promoter or inducible promoter is operably linked to a coding sequence and, optionally, one or more transcription terminators. In some cases, the coding sequence encodes a protein or an RNA product. A "constitutive promoter" refers to a promoter that is always active in a cell. An "inducible promoter" refers to a promoter that initiates or enhances transcriptional activity when in the presence, under the influence of, or in contact with an inducer or inducing agent, or when activated in the absence of a factor that causes repression. Inducible promoters for use according to the present disclosure include any inducible promoter described herein or known to those of skill in the art. Examples of inducible promoters include, but are not limited to, chemically / biochemically regulated and physically regulated promoters, such as organic solvent regulated promoters, tetracycline regulated promoters, steroid regulated promoters, metal regulated promoters, pathogenesis regulated promoters, temperature / heat inducible, phosphate regulated (e.g., PhoA), and light regulated promoters.
[0160] An engineered DNA template encoding an RNA as provided herein may also be operably linked to one or more transcription terminators, which are regulatory regions of nucleic acid that cause a polymerase to stop transcription and dissociate from the DNA template. Terminators can be obtained by isolating one or more sequences naturally associated with a gene or sequence, the 3' non-coding sequences located downstream of the coding segment of a given gene or sequence. Such terminators can be endogenous or engineered for improved termination efficiency. Endogenous and / or engineered terminator sequences from one or more sources can be added sequentially for improved termination efficiency.
[0161] The RNA-encoded circular DNA template may contain one or more transcription terminators to minimize or prevent transcription of non-template DNA sequences, such as sequences that are part of the plasmid backbone. The engineered nucleic acid may be introduced into the host cell using any means known in the art, including, but not limited to, transformation, gene transfer (e.g., chemical (e.g., calcium phosphate, cationic polymers, or liposomes) or non-chemical (e.g., electroporation, sonoporation, impalefection, optical gene transfer, hydrodynamic gene transfer)), and transduction (e.g., viral transduction). An enzyme or other protein encoded by a naturally occurring intracellular nucleic acid can be referred to as an "endogenous enzyme" or "endogenous protein."
[0162] composition In some cases, the reaction mixture for the production of nucleoside triphosphate (NTP) comprises nucleoside diphosphate (NDP), polyphosphate kinase, and polyphosphate. In some cases, the reaction mixture further comprises a nucleoside kinase and / or an NDP kinase. In some cases, the reaction mixture for the production of NTPs comprises a 5' nucleoside monophosphate, a polyphosphate kinase, and polyphosphate. In some cases, the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase. In some cases, the reaction mixture for the production of NTPs comprises a nucleoside, a polyphosphate kinase, and polyphosphate. In some cases, the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase.
[0163] In some cases, the reaction mixture for the production of NTPs comprises a nucleobase, a phosphoribosyltransferase, a phosphoribosylpyrophosphate, a polyphosphate kinase, and a polyphosphate. In some cases, the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase. In some cases, the reaction mixture for the production of NTPs comprises a nucleobase, D-ribose, a ribokinase, a phosphopentomutase, a nucleoside phosphorylase, a polyphosphate kinase, and polyphosphate. In some cases, the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase. In some cases, a reaction mixture for the production of ribonucleic acid (RNA) comprises nucleoside diphosphate (NDP), polyphosphate kinase, polyphosphate, a deoxyribonucleic acid (DNA) template, and a polymerase. In some cases, the reaction mixture further comprises a nucleoside kinase, an NMO kinase, and / or an NDP kinase.
[0164] In some cases, the reaction mixture for the production of RNA includes a 5' nucleoside monophosphate, a polyphosphate kinase, polyphosphate, a deoxyribonucleic acid (DNA) template, and a polymerase. In some cases, the reaction mixture further includes a nucleoside kinase, an NMP kinase, and / or an NDP kinase. In some cases, the reaction mixture for the production of RNA includes nucleosides, a nucleoside kinase, a polyphosphate kinase, polyphosphate, a deoxyribonucleic acid (DNA) template, and a polymerase. In some cases, the reaction mixture further includes a nucleoside kinase, an NMP kinase, and / or an NDP kinase.
[0165] In some cases, the reaction mixture for the production of RNA includes a nucleobase, a phosphoribosyltransferase, phosphoribosylpyrophosphate, a polyphosphate kinase, a polyphosphate, a deoxyribonucleic acid (DNA) template, and a polymerase. In some cases, the reaction mixture further includes a nucleoside kinase, an NMP kinase, and / or an NDP kinase. In some cases, the reaction mixture for the production of RNA includes a nucleobase, D-ribose, ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, polyphosphate, a deoxyribonucleic acid (DNA) template, and a polymerase. In some cases, the reaction mixture further includes a nucleoside kinase, an NMP kinase, and / or an NDP kinase.
[0166] Further Aspects Further aspects of the present disclosure are encompassed by the following numbered paragraphs: 1. A method for producing nucleoside triphosphates (NTPs), comprising: incubating nucleoside diphosphate (NDP), polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for the production of NTP, optionally wherein the reaction mixture further comprises a nucleoside kinase and / or an NDP kinase; The method comprising: 2. The method of paragraph 1, wherein the NDP includes an ADP, a GDP, a CDP, and / or a UDP. 3. The method of paragraph 1 or 2, wherein the NDP is chemically synthesized, is the product of fermentation, or is extracted from a natural source. 4. The method of any one of paragraphs 1-3, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 5. The method of paragraph 4, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis.
[0167] 6. The method of any one of paragraphs 1-5, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 7. The method of any one of paragraphs 1-6, wherein the polyphosphate kinase, nucleoside kinase, and / or NDP kinase is prepared from cells expressing the polyphosphate kinase, nucleoside kinase, and / or NDP kinase. 8. The method of any one of paragraphs 1-7, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing polyphosphate kinase, nucleoside kinase, and / or NDP kinase. 9. The method of paragraph 8, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed. 10. The method of paragraph 9, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation has been removed via genetic modification, enzyme secretion from the cell, and / or protease targeting.
[0168] 11. The method of paragraphs 9 or 10, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 12. The method of any one of paragraphs 9-11, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation has been removed via separation, precipitation, filtration, capture, and / or chromatography. 13. The method of any one of paragraphs 9-12, wherein the native enzymatic activity is selected from a phosphatase, a nuclease, a protease, a deaminase, an oxidoreductase, and a hydrolase. 14. The method of any one of paragraphs 1-13, wherein the polyphosphate kinase, nucleoside kinase, and / or NDP kinase are capable of withstanding the removal conditions. 15. A method for producing nucleoside triphosphates (NTPs), comprising: incubating 5' nucleoside monophosphate (5' NMP), polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for the production of NTPs, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising:
[0169] 16. The method of paragraph 15, wherein the 5'NMP comprises 5'AMP, 5'GMP, 5'CMP and / or 5'UMP. 17. The method of paragraph 15 or 16, wherein the 5'NMP is chemically synthesized, is the product of fermentation, or is extracted from a natural source. 18. The method of any one of paragraphs 15-17, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 19. The method of paragraph 18, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 20. The method of any one of paragraphs 15-19, wherein the polyphosphoric acid comprises hexametaphosphoric acid.
[0170] 21. The method of any one of paragraphs 15-20, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase is prepared from cells expressing polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase. 22. The method of any one of paragraphs 15-21, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase. 23. The method of paragraph 22, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 24. The method of paragraph 23, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 25. The method of paragraph 23 or 24, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors.
[0171] 26. The method of any one of paragraphs 23-25, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation has been removed via separation, precipitation, filtration, capture, and / or chromatography. 27. The method of any one of paragraphs 23-26, wherein the native enzymatic activity is selected from a phosphatase, a nuclease, a protease, a deaminase, an oxidoreductase, and a hydrolase. 28. The method of any one of paragraphs 15-27, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase is capable of withstanding the removal conditions. 29. A method for producing nucleoside triphosphates (NTPs), comprising: incubating a nucleoside, a polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for the production of NTPs, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising: 30. The method of paragraph 29, wherein the nucleosides include adenosine, guanosine, cytidine, and / or uridine.
[0172] 31. The method of paragraph 29 or 30, wherein the nucleoside is chemically synthesized, is the product of fermentation, or is extracted from a natural source. 32. The method of any one of paragraphs 29-31, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 33. The method of paragraph 32, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 34. The method of any one of paragraphs 29-33, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 35. The method of any one of paragraphs 29-34, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase and / or NDP kinase is prepared from a cell expressing the polyphosphate kinase, nucleoside kinase, NMP kinase and / or NDP kinase.
[0173] 36. The method of any one of paragraphs 29-35, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase. 37. The method of paragraph 36, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 38. The method of paragraph 37, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 39. The method of paragraph 37 or 38, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 40. The method of any one of paragraphs 37-39, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation has been removed via separation, precipitation, filtration, capture, and / or chromatography.
[0174] 41. The method of any one of paragraphs 37-40, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase. 42. The method of any one of paragraphs 29-41, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase is capable of withstanding the removal conditions. 43. A method for producing nucleoside triphosphates (NTPs), comprising: incubating in a reaction mixture nucleobases, phosphoribosyltransferase, phosphoribosylpyrophosphate, polyphosphate kinase, and polyphosphate under conditions suitable for the production of NTPs, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising: 44. The method of paragraph 43, wherein the nucleobases include adenine, guanidine, cytosine, and / or uracil. 45. The method of paragraph 43 or 44, wherein the nucleobase is chemically synthesized, is the product of fermentation, or is extracted from a natural source.
[0175] 46. The method of any one of paragraphs 43-45, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 47. The method of paragraph 46, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 48. The method of any one of paragraphs 43-47, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 49. The method of any one of paragraphs 43-48, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase and / or NDP kinase is prepared from cells expressing polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase. 50. The method of any one of paragraphs 43-49, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase.
[0176] 51. The method of paragraph 50, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 52. The method of paragraph 51, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 53. The method of paragraph 51 or 52, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 54. The method of any one of paragraphs 51 to 53, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation has been removed via separation, precipitation, filtration, capture, and / or chromatography.
[0177] 55. The method of any one of paragraphs 51-54, wherein the native enzymatic activity is selected from a phosphatase, a nuclease, a protease, a deaminase, an oxidoreductase, and a hydrolase. 56. The method of any one of paragraphs 43-55, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase is capable of withstanding the removal conditions. 57. A method for producing nucleoside triphosphates (NTPs), comprising: incubating in a reaction mixture a nucleobase, a ribose, a ribokinase, a phosphopentomutase, a nucleoside phosphorylase, a polyphosphate kinase, and polyphosphate under conditions suitable for the production of NTPs, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising: 58. The method of paragraph 57, wherein the nucleobases include adenine, guanidine, cytosine, and / or uracil. 59. The method of paragraph 57 or 58, wherein the nucleobase is chemically synthesized, is the product of fermentation, or is extracted from a natural source. 60. The method of any one of paragraphs 57-59, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes.
[0178] 61. The method of paragraph 60, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 62. The method of any one of paragraphs 57-61, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 63. The method of any one of paragraphs 57-62, wherein the ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase is prepared from a cell expressing the ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase. 64. The method of any one of paragraphs 57-63, wherein the reaction mixture comprises a lysate prepared from cells expressing ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase. 65. The method of paragraph 64, wherein the native enzymatic activity of the enzyme in the cell lysate is removed.
[0179] 66. The method of paragraph 65, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 67. The method of paragraph 65 or 66, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, organic solvent, and / or chemical inhibitor. 68. The method of any one of paragraphs 65-67, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via separation, precipitation, filtration, capture, and / or chromatography. 69. The method of any one of paragraphs 65-68, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase. 70. The method of any one of paragraphs 57-69, wherein the ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, NMP kinase, NDP kinase, and / or nucleoside kinase is modified to withstand the removal conditions.
[0180] 71. A method for producing nucleoside triphosphates (NTPs), comprising: incubating cellular ribonucleic acid (RNA), polynucleotide phosphorylase (PNPase), inorganic phosphate, polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for the production of NDP and NTP, optionally wherein the reaction mixture further comprises a nucleoside kinase and / or an NDP kinase; The method comprising: 72. The method of paragraph 71, wherein the cellular RNA comprises ribosomal RNA, messenger RNA, and / or transfer RNA. 73. The method of paragraph 61 or 72, wherein the cellular RNA is from a unicellular organism or a multicellular organism. 74. The method of any one of paragraphs 71-73, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 75. The method of paragraph 74, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis.
[0181] 76. The method of any one of paragraphs 71-75, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 77. The method of any one of paragraphs 71-76, wherein the PNPase, polyphosphate kinase, nucleoside kinase, and / or NDP kinase is prepared from cells expressing PNPase, polyphosphate kinase, nucleoside kinase, and / or NDP kinase. 78. The method of any one of paragraphs 71-77, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing PNPase, polyphosphate kinase, nucleoside kinase, and / or NDP kinase. 79. The method of paragraph 78, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 80. The method of paragraph 79, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting.
[0182] 81. The method of paragraph 79 or 80, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 82. The method of any one of paragraphs 79 to 81, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via separation, precipitation, filtration, capture, and / or chromatography. 83. The method of any one of paragraphs 79-82, wherein the native enzymatic activity is selected from a phosphatase, a nuclease, a protease, a deaminase, an oxidoreductase, and a hydrolase. 84. The method of any one of paragraphs 79-83, wherein the PNPase, polyphosphate kinase, nucleoside kinase, and / or NDP kinase is capable of withstanding the removal conditions. 85. A method for producing nucleoside triphosphates (NTPs), comprising: (a) incubating cellular ribonucleic acid (RNA), ribonuclease, polyphosphate kinase, and polyphosphate in a reaction mixture under conditions suitable for the production of 5' NMPs and NTPs, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising:
[0183] 86. The method of paragraph 85, wherein the cellular RNA comprises ribosomal RNA, messenger RNA, and / or transfer RNA. 87. The method of paragraph 85 or 86, wherein the cellular RNA is from a unicellular organism or a multicellular organism. 88. The method of any one of paragraphs 85-87, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 89. The method of paragraph 88, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 90. The method of any one of paragraphs 85-89, wherein the polyphosphoric acid comprises hexametaphosphoric acid.
[0184] 91. The method of any one of paragraphs 85-90, wherein the ribonuclease, polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase is prepared from a cell expressing the ribonuclease, polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase. 92. The method of any one of paragraphs 85-91, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing ribonuclease, polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase. 93. The method of paragraph 92, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 94. The method of paragraph 93, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 95. The method of paragraph 93 or 94, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors.
[0185] 96. The method of any one of paragraphs 93-95, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via separation, precipitation, filtration, capture, and / or chromatography. 97. The method of any one of paragraphs 93-96, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase. 98. The method of any one of paragraphs 93-97, wherein the ribonuclease, polyphosphate kinase, nucleoside kinase, NMP kinase, and / or NDP kinase is capable of withstanding the removal conditions. 99. A method for producing ribonucleic acid (RNA), comprising: incubating nucleoside diphosphate (NDP), polyphosphate kinase, polyphosphate, a DNA template encoding the RNA of interest, and RNA polymerase in a reaction mixture under conditions suitable for producing the RNA of interest, optionally wherein the reaction mixture further comprises a nucleoside kinase and / or an NDP kinase; The method comprising: 100. The method of paragraph 99, wherein the NDP includes an ADP, a GDP, a CDP and / or a UDP.
[0186] 101. The method of paragraph 99 or 100, wherein the NDP is chemically synthesized, is the product of fermentation, or is extracted from a natural source. 102. The method of any one of paragraphs 99-101, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 103. The method of paragraph 102, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 104. The method of any one of paragraphs 99-103, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 105. The method of any one of paragraphs 99-104, wherein the polyphosphate kinase, DNA template, polymerase, nucleoside kinase, and / or NDP kinase is prepared from cells expressing the polyphosphate kinase, DNA template, polymerase, nucleoside kinase, and / or NDP kinase.
[0187] 106. The method of any one of paragraphs 99-105, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing polyphosphate kinase, a DNA template, a polymerase, a nucleoside kinase, and / or an NDP kinase. 107. The method of paragraph 106, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed. 108. The method of paragraph 107, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 109. The method of paragraph 107 or 108, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 110. Paragraphs 107-109, in which the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via separation, precipitation, filtration, capture, and / or chromatography.
[0188] 111. The method of any one of paragraphs 107-110, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase. 112. The method of any one of paragraphs 99-111, wherein the polyphosphate kinase, polymerase, nucleoside kinase, and / or NDP kinase can withstand the removal conditions. 113. The method of any one of paragraphs 99-112, wherein the polymerase comprises an RNA polymerase. 114. A method for producing ribonucleic acid (RNA), comprising: incubating 5' nucleoside monophosphate (5' NMP), polyphosphate kinase, polyphosphate, a DNA template encoding the RNA of interest, and a polymerase in a reaction mixture under conditions suitable for producing the RNA of interest, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising: 115. The method of paragraph 114, wherein the 5'NMP comprises 5'AMP, 5'GMP, 5'CMP and / or 5'UMP.
[0189] 116. The method of paragraph 114 or 115, wherein the 5'NMP is chemically synthesized, is a product of fermentation, or is extracted from a natural source. 117. The method of any one of paragraphs 114-116, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 118. The method of paragraph 117, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 119. The method of any one of paragraphs 114-118, wherein the polyphosphate comprises hexametaphosphate. 120. The method of any one of paragraphs 114-119, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase is prepared from a cell expressing the polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase.
[0190] 121. The method of any one of paragraphs 114-120, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase. 122. The method of paragraph 121, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 123. The method of paragraph 122, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 124. The method of paragraph 122 or 123, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 125. The method of any one of paragraphs 122-124, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation has been removed via separation, precipitation, filtration, capture, and / or chromatography.
[0191] 126. The method of any one of paragraphs 122-125, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase. 127. The method of any one of paragraphs 114-126, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, and / or polymerase is capable of withstanding the removal conditions. 128. The method of any one of paragraphs 114-127, wherein the polymerase comprises an RNA polymerase. 129. A method for producing ribonucleic acid (RNA), comprising: incubating nucleosides, polyphosphate kinase, polyphosphate, a DNA template encoding the RNA of interest, and / or a polymerase in a reaction mixture under conditions appropriate for producing the RNA of interest, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising: 130. The method of paragraph 129, wherein the nucleosides include adenosine, guanosine, cytidine, and / or uridine.
[0192] 131. The method of paragraph 129 or 130, wherein the nucleoside is chemically synthesized, is the product of fermentation, or is extracted from a natural source. 132. The method of any one of paragraphs 129-131, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 133. The method of paragraph 132, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 134. The method of any one of paragraphs 129-133, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 135. The method of any one of paragraphs 129-134, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase is prepared from a cell expressing at least one polyphosphate kinase, nucleoside kinase, polyphosphate, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase.
[0193] 136. The method of any one of paragraphs 129-135, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing at least one of polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase. 137. The method of paragraph 136, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 138. The method of paragraph 137, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 139. The method of paragraph 137 or 138, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 140. The method of any one of paragraphs 137-139, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via separation, precipitation, filtration, capture, and / or chromatography.
[0194] 141. The method of any one of paragraphs 137-140, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase. 142. The method of any one of paragraphs 129-141, wherein at least one of polyphosphate kinase, polyphosphate, nucleoside kinase, NMP kinase, NDP kinase, and / or polymerase can withstand the removal conditions. 143. The method of any one of paragraphs 129-142, wherein the polymerase comprises an RNA polymerase. 144. A method for producing ribonucleic acid (RNA), comprising: incubating in a reaction mixture nucleobases, phosphoribosyltransferase, phosphoribosylpyrophosphate, polyphosphate kinase, and polyphosphate, a DNA template encoding the RNA of interest, and / or a polymerase under conditions appropriate for producing the RNA of interest, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising: 145. The method of paragraph 144, wherein the nucleobases include adenine, guanidine, cytosine, and / or uracil.
[0195] 146. The method of paragraph 144 or 145, wherein the nucleobase is chemically synthesized, is the product of fermentation, or is extracted from a natural source. 147. The method of any one of paragraphs 144-146, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 148. The method of paragraph 148, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 149. The method of any one of paragraphs 144-148, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 150. The method of any one of paragraphs 144-149, wherein the phosphoribosyltransferase, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase is prepared from a cell expressing the phosphoribosyltransferase, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase.
[0196] 151. The method of any one of paragraphs 144-150, wherein the reaction mixture comprises a cell lysate or enzyme preparation from cells expressing phosphoribosyltransferase, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase. 152. The method of paragraph 151, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 153. The method of paragraph 152, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 154. The method of paragraph 152 or 153, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 155. The method of any one of paragraphs 152-154, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via separation, precipitation, filtration, capture, and / or chromatography.
[0197] 156. The method of any one of paragraphs 152-155, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase. 157. The method of any one of paragraphs 144-156, wherein the phosphoribosyltransferase, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, and / or polymerase is capable of withstanding the removal conditions. 158. The method of any one of paragraphs 144-157, wherein the polymerase comprises an RNA polymerase. 159. A method for producing ribonucleic acid (RNA), comprising: Incubating in a reaction mixture nucleobases, ribose, ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, polyphosphate, a DNA template encoding the RNA of interest, and a polymerase under conditions suitable for producing the RNA of interest, optionally wherein the reaction mixture further comprises a nucleoside kinase, an NMP kinase, and / or at least one NDP kinase; The method comprising: 160. The method of paragraph 159, wherein the nucleobases include adenine, guanidine, cytosine, and / or uracil.
[0198] 161. The method of paragraph 159 or 160, in which the nucleobase is chemically synthesized, is the product of fermentation, or is extracted from a natural source. 162. The method of any one of paragraphs 159-161, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 163. The method of paragraph 162, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 164. The method of any one of paragraphs 159-163, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 165. The method of any one of paragraphs 159-164, wherein the ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase is from at least one lysate prepared from an engineered cell modified to express ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase.
[0199] 166. The method of any one of paragraphs 159-165, wherein the reaction mixture comprises a lysate prepared from cells expressing ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, a DNA template, and / or a polymerase. 167. The method of paragraph 166, wherein the native enzymatic activity of the enzyme in the cell lysate is removed. 168. The method of paragraph 167, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 169. The method of paragraph 167 or 168, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, organic solvent, and / or chemical inhibitor. 170. The method of any one of paragraphs 167-169, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation is removed via separation, precipitation, filtration, capture, and / or chromatography.
[0200] 171. The method of any one of paragraphs 167-170, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase. 172. The method of any one of paragraphs 159-171, wherein the ribokinase, phosphopentomutase, nucleoside phosphorylase, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, and / or polymerase is modified to withstand the removal conditions. 173. The method of any one of paragraphs 159-172, wherein the at least one polymerase comprises at least one RNA polymerase. 174. A method for producing ribonucleic acid (RNA), comprising: (a) incubating cellular ribonucleic acid (RNA), polynucleotide phosphorylase (PNPase), and inorganic phosphate in a reaction mixture under conditions appropriate for the production of nucleoside diphosphates (NDPs); (b) removing PNPase; and (c) incubating in the reaction mixture, or in a second reaction mixture, NDP, polyphosphate kinase, polyphosphate, a DNA template encoding the RNA of interest, and a polymerase under conditions suitable for producing the RNA of interest, optionally wherein the reaction mixture of step (c) further comprises a nucleoside kinase and / or an NDP kinase; The method comprising: 175. The method of paragraph 174, wherein the cellular RNA comprises ribosomal RNA, messenger RNA, and / or transfer RNA.
[0201] 176. The method of paragraph 174 or 175, wherein the cellular RNA is from a unicellular organism or a multicellular organism. 177. The method of any one of paragraphs 174-176, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 178. The method of paragraph 177, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 179. The method of any one of paragraphs 174-178, wherein the polyphosphate comprises hexametaphosphate. 180. The method of any one of paragraphs 174 to 179, wherein the PNPase is prepared from cells that express PNPase.
[0202] 181. The method of any one of paragraphs 174 to 180, wherein the reaction mixture of (a) comprises a cell lysate prepared from cells expressing PNPase. 182. The method of paragraph 181, wherein step (b) comprises removing PNPase via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 183. The method of paragraph 181 or 182, wherein step (b) comprises removing PNPase, wherein the native enzymatic activity of the enzyme in the cell lysate or enzyme preparation has been removed via separation, precipitation, filtration, capture, and / or chromatography. 184. The method of any one of paragraphs 174-183, wherein the polyphosphate kinase, nucleoside kinase, NDP kinase, DNA template, and / or polymerase is prepared from a cell expressing the polyphosphate kinase, nucleoside kinase, NDP kinase, DNA template, and / or polymerase. 185. The method of any one of paragraphs 174-183, wherein the reaction mixture of step (c) comprises a cell lysate prepared from cells expressing polyphosphate kinase, nucleoside kinase, NDP kinase, DNA template, and / or polymerase.
[0203] 186. The method of paragraph 185, wherein native enzymatic activity of the enzyme in the cell lysate of step (c) is removed. 187. The method of paragraph 186, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting. 188. The method of paragraph 186 or 187, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 189. The method of any one of paragraphs 186-188, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via separation, precipitation, filtration, capture, and / or chromatography. 190. The method of any one of paragraphs 186-189, wherein the native enzymatic activity is selected from phosphatase, nuclease, protease, deaminase, oxidoreductase, and hydrolase.
[0204] 191. The method of any one of paragraphs 186-190, wherein the polyphosphate kinase, nucleoside kinase, NDP kinase, and / or polymerase can withstand the removal conditions. 192. The method of any one of paragraphs 174-191, wherein the polymerase comprises an RNA polymerase. 193. A method for producing ribonucleic acid (RNA), comprising: (a) incubating in a reaction mixture cellular ribonucleic acid (RNA), polynucleotide phosphorylase (PNPase), inorganic phosphate, polyphosphate kinase, polyphosphate, a DNA template encoding the RNA of interest, and a polymerase under conditions suitable for the production of nucleoside diphosphates, optionally wherein the reaction mixture further comprises a nucleoside kinase and / or an NDP kinase; (b) removing PNPase; and (c) incubating the reaction mixture under conditions appropriate for production of the RNA of interest; The method comprising: 194. The method of paragraph 193, wherein the cellular RNA comprises ribosomal RNA, messenger RNA, and / or transfer RNA. 195. The method of paragraph 193 or 194, wherein the cellular RNA is from a unicellular organism or a multicellular organism.
[0205] 196. The method of any one of paragraphs 193-195, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 197. The method of paragraph 196, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 198. The method of any one of paragraphs 193-197, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 199. The method of any one of paragraphs 193-198, wherein the PNPase, polyphosphate kinase, nucleoside kinase, NDP kinase, DNA template, and / or polymerase is prepared from a cell expressing the PNPase, polyphosphate kinase, nucleoside kinase, NDP kinase, DNA template, and / or polymerase. 200. The method of any one of paragraphs 193-199, wherein the reaction mixture of (a) comprises a cell lysate prepared from cells expressing PNPase, polyphosphate kinase, nucleoside kinase, NDP kinase, DNA template, and / or polymerase.
[0206] 201. The method of paragraph 200, wherein step (b) comprises removing PNPase and native enzyme activity in the cell lysate via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 202. The method of paragraph 200 or 201, wherein step (b) comprises removing PNPase and native enzyme activity in the cell lysate via separation, precipitation, filtration, capture, and / or chromatography. 203. The method of any one of paragraphs 200-202, wherein step (b) comprises removing native enzyme activity in the cell lysate via genetic modification, enzyme secretion from the cells, and / or protease targeting. 204. The method of any one of paragraphs 201-203, wherein the native enzymatic activity is selected from a phosphatase, a nuclease, a protease, a deaminase, an oxidoreductase, and a hydrolase. 205. The method of any one of paragraphs 201-204, wherein the polyphosphate kinase, nucleoside kinase, NDP kinase, and / or polymerase can withstand the removal conditions.
[0207] 206. The method of any one of paragraphs 193-205, wherein the polymerase comprises an RNA polymerase. 207. A method for producing ribonucleic acid (RNA), comprising: (a) incubating cellular ribonucleic acid (RNA) and ribonuclease in a reaction mixture under conditions suitable for the production of 5' nucleoside monophosphates (5' NMPs); (b) removing ribonucleases; and (c) incubating in the reaction mixture, or in a second reaction mixture, 5' NMP, polyphosphate kinase, polyphosphate, a DNA template encoding the RNA of interest, and a polymerase under conditions appropriate for producing the RNA of interest, optionally wherein the reaction mixture of step (c) further comprises a nucleoside kinase, an NMP kinase, and / or an NDP kinase; The method comprising: 208. The method of paragraph 207, wherein the cellular RNA comprises ribosomal RNA, messenger RNA, and / or transfer RNA. 209. The method of paragraph 207 or 208, wherein the cellular RNA is from a unicellular organism or a multicellular organism. 210. The method of any one of paragraphs 207-209, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes.
[0208] 211. The method of paragraph 210, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis. 212. The method of any one of paragraphs 207-211, wherein the polyphosphoric acid comprises hexametaphosphoric acid. 213. The method of any one of paragraphs 207-212, wherein the ribonuclease is prepared from cells that express the ribonuclease. 214. The method of any one of paragraphs 207-213, wherein the reaction mixture of (a) includes a cell lysate prepared from cells expressing the ribonuclease. 215. The method of paragraph 214, wherein step (b) comprises removing ribonucleases via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors.
[0209] 216. The method of paragraph 214 or 215, wherein step (b) comprises removing the ribonuclease via separation, precipitation, filtration, capture, and / or chromatography. 217. The method of any one of paragraphs 207-216, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase is prepared from a cell expressing the polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase. 218. The method of any one of paragraphs 207-216, wherein the reaction mixture of step (c) comprises a cell lysate prepared from cells expressing polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase. 219. The method of paragraph 218, wherein native enzymatic activity of the enzyme in the cell lysate of step (c) is removed. 220. The method of paragraph 219, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via genetic modification, enzyme secretion from the cell, and / or protease targeting.
[0210] 221. The method of paragraph 219 or 220, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 222. The method of any one of paragraphs 219-221, wherein the native enzymatic activity of the enzyme in the cell lysate is removed via separation, precipitation, filtration, capture, and / or chromatography. 223. The method of any one of paragraphs 219-222, wherein the native enzymatic activity is selected from a phosphatase, a nuclease, a protease, a deaminase, an oxidoreductase, and a hydrolase. 224. The method of any one of paragraphs 219-223, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, and / or polymerase can withstand the removal conditions. 225. The method of any one of paragraphs 207-224, wherein the polymerase comprises at least one RNA polymerase.
[0211] 226. A method for producing ribonucleic acid (RNA), comprising: (a) incubating in a reaction mixture cellular ribonucleic acid (RNA), ribonuclease, polyphosphate kinase, polyphosphate, a DNA template encoding the RNA of interest, and a polymerase under conditions appropriate for the production of 5' nucleoside monophosphates (5' NMPs); (b) removing ribonucleases; and (c) incubating the reaction mixture under conditions appropriate for production of the RNA of interest; The method comprising: 227. The method of paragraph 226, wherein the cellular RNA comprises ribosomal RNA, messenger RNA, and / or transfer RNA. 228. The method of paragraph 226 or 214, wherein the cellular RNA is from a unicellular organism or a multicellular organism. 229. The method of any one of paragraphs 226-228, wherein the polyphosphate kinase is selected from the PPK1 family of enzymes and the PPK2 family of enzymes. 230. The method of paragraph 229, wherein the polyphosphate kinase comprises class III polyphosphate kinase 2 from Deinococcus geothermalis.
[0212] 231. The method of any one of paragraphs 226-230, wherein the polyphosphate comprises hexametaphosphate. 232. The method of any one of paragraphs 226-231, wherein the ribonuclease, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase is prepared from a cell expressing the ribonuclease, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase. 233. The method of any one of paragraphs 227-232, wherein the reaction mixture of (a) comprises a cell lysate prepared from cells expressing ribonuclease, polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, DNA template, and / or polymerase. 234. The method of graph 233, wherein step (b) comprises removing ribonuclease and native enzyme activity in the cell lysate via temperature, pH, salt, detergent, alcohol, and / or chemical inhibitors. 235. The method of paragraph 233 or 234, wherein step (b) comprises removing ribonuclease and native enzyme activity in the cell lysate via separation, precipitation, filtration, capture, and / or chromatography.
[0213] 236. The method of any one of paragraphs 233-235, wherein step (b) comprises removing native enzyme activity in the cell lysate via genetic modification, enzyme secretion from the cells, and / or protease targeting. 237. The method of any one of paragraphs 234-236, wherein the native enzymatic activity is selected from a phosphatase, a nuclease, a protease, a deaminase, an oxidoreductase, and a hydrolase. 238. The method of any one of paragraphs 234-237, wherein the polyphosphate kinase, nucleoside kinase, NMP kinase, NDP kinase, and / or polymerase can withstand the removal conditions. 239. The method of any one of paragraphs 226-238, wherein the polymerase comprises an RNA polymerase.
[0214] example Example 1 - Cell-free synthesis of RNA starting from either lysate RNA or purified E. coli RNA. Materials and methods Strains and lysates E. coli strain BL21(DE3) was transformed with the pETDuet-1 vector encoding codon-optimized versions of the following enzymes: RNase R (K544R) from E. coli (EcRNR), UMP kinase from Pyrococcus furiosus (PfPyrH), CMP kinase from Thermus thermophilus (TthCmk), GMP kinase from Thermotoga maritima (TmGmk), NDP kinase from Aquifex aeolicus (AaNdk), and class III polyphosphate kinase 2 (DgPPK2) from Deinococcus geothermalis. All enzymes except DgPPK2 contained an N-terminal hexahistidine tag. The resulting strains were grown in a batch fermentation process at 37°C in Korz medium supplemented with 40 g / L glucose and 50 mg / L carbenicillin at OD . 600 The cells were grown to a concentration of 0.05% by weight (CpG) and induced with 0.8 mM isopropyl β-D-1-thiogalactopyranoside (IPTG) for an additional hour before being harvested via centrifugation. After harvest, the biomass pellet was stored at -80°C.
[0215] The biomass pellet was then used to prepare cell lysates. Lysates were prepared by thawing the biomass pellet on ice and then resuspending it in 1.5 volumes of resuspension buffer. For strains expressing EcRNR, the biomass was resuspended in 58.8 mM potassium phosphate monobasic. For strains expressing PfPyrH, TthCmk, TmGmk, and AaNdk, the biomass was resuspended in 50 mM Tris-HCl (pH 8.5) with 50 mM NaCl. For strains expressing DgPPK2, the biomass was resuspended in 100 mM MOPS-NaOH (pH 7.0). For all strains, the biomass was lysed by two to three passes of mechanical homogenization at 15,000 psi at 4°C. The lysates were then clarified by centrifugation at 16,000 × g for 1 hour at 4°C.
[0216] E. coli RNA extraction and purification RNA was extracted and purified from high-density E. coli lysates (protein concentration: 40–50 mg / mL) according to established protocols (Mohanty, BK, Giladi, H., Maples, VF, & Kushner, SR (2008). Analysis of RNA decay, processing, and polyadenylation in Escherichia coli and other prokaryotes. Methods in Enzymology, 447, 3–29).
[0217] Protein expression and purification E. coli strain BL21(DE3) was transformed with the pBAD24 vector encoding a thermostable mutant T7 RNA polymerase with an N-terminal hexahistidine tag. The resulting strain was cultured in a baffled shake flask using lysogeny broth (LB) medium supplemented with 50 mg / L carbenicillin. The culture was grown at 37°C with shaking to an OD600 of 0.6, then induced with 0.2% (w / v) L-arabinose and grown for an additional 4 hours. The biomass was then collected by centrifugation and stored at -80°C until lysis. Lysates were prepared by thawing the biomass pellet on ice, resuspending it in 1.5 volumes of equilibration / wash buffer (20 mM sodium phosphate (pH 7.4), 500 mM sodium chloride, 30 mM imidazole), and passing it through mechanical homogenization at 15,000 psi at 4°C for 2-3 passes. The lysates were then clarified by centrifugation. The recombinant protein was purified by fast protein liquid chromatography (FPLC) using an AKTAPrime Plus with a HisTrap HP column (GE Healthcare Life Sciences) according to standard protocols. Fractions containing the recombinant protein were then combined, and the buffer was exchanged by dialysis into 2x phosphate-buffered saline (PBS) supplemented with 5 mM DTT and 0.01% Triton X-100. After dialysis, the protein stock was diluted with an equal volume of glycerol and stored at -20°C. Cultures were grown, expression induced, and lysates prepared according to the protocols described herein for E. coli RNase R. The enzyme was then purified according to the protocols described herein, except that the purified enzyme was buffer exchanged by dialysis into 2x PBS supplemented with 500 mM NaCl before mixing with glycerol.
[0218] DNA template preparation Linear DNA templates were amplified from synthetic DNA by PCR and purified using solid-phase reversible immobilization (SPRI) onto paramagnetic beads. Plasmid DNA templates were prepared by cloning the sequence of interest into a suitable plasmid vector, transforming the resulting plasmid into E. coli strain DH10b, culturing the transformants in LB medium, and purifying the plasmid using a Plasmid Maxi or Giga kit (Qiagen).
[0219] Cell-free RNA synthesis from lysate RNA Lysates expressing EcRNR, TthCmk, PfPyrH, TmGmk, AaNdk, and DgPPK2 were each diluted to 42 mg / mL in 50 mM Tris, 50 mM NaCl (pH 7.0) and then combined in equal proportions. RNA depolymerization in the lysates was initiated by adding an equal volume of 3 mM ethylenediaminetetraacetic acid (EDTA) in 50 mM Tris, 50 mM NaCl (pH 7.0) and incubating at 37°C for 15 minutes. Depolymerization was monitored by quantifying acid-soluble nucleotides by absorbance at 260 nm. Magnesium sulfate and sodium hexametaphosphate were added to the lysates to final concentrations of 30 mM and 1 mM, respectively, and the lysates were then incubated at 70°C for 15 minutes to inactivate EcRNR and endogenous E. coli enzymes. After 15 minutes, the temperature was reduced to 50° C. and the reaction was assembled with the following composition: Table 11. Reaction conditions [Table 11] Reactions were incubated at 50°C for 2 hours, treated with TURBO DNase (Thermo Fisher), and analyzed by agarose gel electrophoresis.
[0220] Cell-free RNA synthesis from purified E. coli RNA Purified E. coli RNA (approximately 8 g / L) was depolymerized by incubation with 1 g / L of purified E. coli RNase R in a buffer containing 50 mM Tris-HCl (pH 7.0), 50 mM sodium chloride, and 2 mM magnesium sulfate. The depolymerization reaction was incubated at 37°C for 30 minutes and monitored by quantifying acid-soluble nucleotides by absorbance at 260 nm. After 30 minutes, the depolymerization reaction was combined with equal ratios of TthCmk, TmGmk, PfPyrH, AaNdk, and DgPPK2 lysates, each diluted in 50 mM Tris-HCl (pH 7.0), 50 mM NaCl. Magnesium sulfate and sodium hexametaphosphate were then added to final concentrations of 30 mM and 1 mM, respectively, and the reaction was heated to 70°C for 15 minutes. After heat quenching, the reaction was assembled as described herein with the following composition: Table 12. Reaction conditions [Table 12]
[0221] result Cell-free synthesis of RNA was performed using lysate RNA as a substrate. RNA from pooled lysates overexpressing pathway enzymes was first depolymerized with overexpressed E. coli RNase R (EcRNR), an exonuclease that generates 5'NMPs. Depolymerization was rapid, producing approximately 14 mM acid-soluble nucleotides after 15 minutes (Figure 8A). The lysate mixture containing pathway enzymes and 5'NMPs was then heat-treated to inactivate EcRNR and endogenous E. coli enzymes, while thermostable pathway enzymes remained active. After heat inactivation, RNA synthesis reactions were assembled, incubated at 50°C, and visualized on an agarose gel (Figure 8B). Reactions with two different templates, including a linear PCR product (template 1) and a plasmid-encoded hairpin template (template 2), produced distinct bands on the agarose gel (Figure 8B). No bands were observed in the absence of RNA polymerase. As a positive control, reactions were performed in which purified 5' NMPs (4 mM each of AMP, CMP, GMP, and UMP) were added. These reactions produced products migrating at the same size as reactions using NMPs generated by depolymerizing RNA.
[0222] Cell-free synthesis of RNA was also performed using purified E. coli RNA as a substrate. The RNA was first incubated with purified E. coli RNase R (K544R) to release the 5' NMP (Figure 9A). After 30 minutes, the depolymerization reaction was combined with a lysate mixture containing pathway enzymes and heat-treated to inactivate EcRNR and endogenous E. coli enzymes, while thermostable pathway enzymes remained active. After heat inactivation, the RNA synthesis reaction was assembled, incubated at 50°C, and visualized on an agarose gel (Figure 9B). Reactions with two different templates, including a linear PCR product (template 1) and a plasmid-encoded hairpin template (template 2), produced defined bands on the agarose gel, although the yield appeared lower for template 2 (Figure 9B). Again, no bands were observed in the absence of RNA polymerase.
[0223] Taken together, these results demonstrate that cell-free RNA synthesis can be used to generate RNA of interest from a variety of NMP source materials, including highly pure, commercially available NMP, NMP produced by enzymatic depolymerization of lysate RNA, and NMP produced by enzymatic depolymerization of purified RNA.
[0224] Example 2 - Cell-free synthesis of RNA using a non-thermostable wild-type polymerase or a thermostable polymerase mutant and purified NMP as a substrate material and method Biomass, lysates, purified proteins, and DNA templates were prepared as described herein. Cell-free synthesis of RNA was performed essentially as described in Example 1, except that EcRNR was omitted and 4 mM each of AMP, CMP, GMP, and UMP were added to the reaction.
[0225] result Cell-free synthesis of RNA was performed using purified NMP as a substrate at a reaction temperature of 37°C. Lysates containing pathway enzymes were assembled and heat-treated to inactivate endogenous E. coli enzymes, while thermostable pathway enzymes remained active. After heat inactivation, reactions were assembled using either wild-type T7 RNA polymerase or a thermostable mutant, incubated for 2 hours at 37°C, and visualized on an agarose gel (Figure 10). Reactions with two different templates, including a linear PCR product (template 1) and a plasmid-encoded hairpin template (template 2), produced distinguishable bands with both polymerases. At 37°C, RNA yields appeared higher with the wild-type polymerase than with the thermostable mutant, particularly with template 2. No bands were observed in the absence of RNA polymerase. These results indicate that the RNA polymerase used for cell-free RNA synthesis does not need to be thermostable, and that wild-type T7 RNA polymerase can be used in reactions at 37°C to produce RNA.
[0226] Example 3 - Cell-free synthesis of RNA using class III polyphosphate kinase 2 (DgPPK2) from Deinococcus geothermalis and NMP as substrate material and method A cell-free RNA synthesis reaction was assembled essentially as described in Example 2 with the following composition: Table 13. Reaction conditions [Table 13] As a positive control, a five-enzyme lysate system containing uridylate kinase, cytidylate kinase, guanylate kinase, nucleotide diphosphate kinase, and polyphosphate kinase was used in the reactions described in Examples 1 and 2. The dsRNA synthesized in the reactions was purified via an adapted RNASwift extraction protocol and quantified using reversed-phase ion-pair chromatography as described herein (Nwokeji, AO, Kilby, PM, Portwood, DE, & Dickman, MJ (2016). RNASwift: A rapid, versatile RNA extraction method free from phenol and chloroform. Analytical Biochemistry, 512, 36–46).
[0227] result Cell-free RNA synthesis was performed in reactions containing DgPPK2 as the sole kinase and NMP as the substrate. As a positive control, RNA was synthesized in the presence of a five-enzyme lysate system containing uridylate kinase, cytidylate kinase, guanylate kinase, nucleotide diphosphate kinase, and polyphosphate kinase. Control reactions were performed in the absence of polymerase. The response factor for each reaction was determined. The response factor was calculated as the ratio of the area of the target dsRNA to the area of the commercially available dsRNA internal standard. Comparison of the response factors showed that reactions containing DgPPK2 as the sole kinase synthesized approximately 48% of the synthetic dsRNA synthesized in reactions containing the five-enzyme lysate system (Figure 11A). The synthetic dsRNA products synthesized in the DgPPK2 and five-enzyme lysate reactions were analyzed by HPLC. The HPLC chromatograms of the dsRNA products from the reactions were similar, indicating that the dsRNA products generated by the DgPPK2-only system were similar to those generated by the five-enzyme system (Figure 11B). Taken together, these results indicate that DgPPK2 could be used as the sole kinase to synthesize cell-free dsRNA from NMP or NDP.
[0228] Example 4 - Depolymerization of RNA from various sources using purified RNase R or purified nuclease P1 material and method RNA and nuclease extraction and purification RNA was extracted and purified from high-density E. coli lysates (protein concentration: 40–50 mg / mL) according to established protocols (Mohanty, BK, Giladi, H., Maples, VF, & Kushner, SR (2008). Analysis of RNA decay, processing, and polyadenylation in Escherichia coli and other prokaryotes. Methods in Enzymology, 447, 3–29). RNA from Vibrio species was purified from V. natriegens cell broth using the RNASwift protocol (Nwokeji, AO, Kilby, PM, Portwood, DE, & Dickman, MJ (2016). RNASwift: A rapid, versatile RNA extraction method free from phenol and chloroform. Analytical Biochemistry, 512, 36-46).
[0229] Yeast-derived RNA extract was purchased from a commercial source. The RNA powder was approximately 85% to 90% pure and required no further purification. RNase R was purified from an E. coli strain overexpressing RNase R and grown to high cell density. The protein was purified by immobilized metal affinity chromatography using a HisTrap HP column coupled to an AKTAPrime Plus FPLC system (GE Healthcare). Purified nuclease P1, a 5' phosphodiesterase, was obtained from a commercial source.
[0230] Depolymerization of RNA by exogenous nucleases E. coli RNA, V. natriegens RNA, and yeast RNA powder (11 mg / mL RNA content) resuspended in nuclease-free water, RNase R solution (1 mg / mL in 300 mM potassium phosphate buffer (pH 7.4), 200 mM KCl, 2 mM MgCl), and purified nuclease P1 (also known as 5' phosphodiesterase) (1-2 mg / mL in 100 mM potassium phosphate buffer (pH 7.4), 1 mM ZnCl, 10 mM MgCl) were pre-equilibrated to 2°C before initiating the reaction. At time t = 0, 50 μL of RNA and 50 μL of nuclease solution were mixed and transferred to a preheated 37°C block to initiate the reaction. After initiation, reactions were incubated at 37°C and sampled periodically by transferring 10 μL to acid quench solution (90 μL of 0.2 M sulfuric acid) on ice. After completion of the time course, quenched samples were clarified by centrifugation at 3,200 × g for 20 minutes at 2°C. Depolymerization was first quantified by the absorbance of acid-soluble nucleotides at 260 nm. The total nucleotide pool (e.g., 100% depolymerization) was determined by alkaline hydrolysis of RNA: 50 μL of RNA was combined with 150 μL of 0.2 M potassium hydroxide and then heated to 99°C for 20 minutes. The alkaline hydrolyzed samples were then quenched and analyzed as described above. Depolymerization was also quantified by LC-MS analysis of 5', 2', and 3' NMP: 10 μL of sample was quenched in 30 μL of 100% acetonitrile and diluted in 500 μL of deionized water containing 10 μM adipic acid, used as an internal standard. Samples were then centrifuged and passed through a 0.2 μm filter before LC-MS analysis.
[0231] Nucleotide analysis Analysis of 2', 3', and 5' NMP was performed by mass spectrometry and liquid chromatography using a standard Agilent 1200 HPLC equipped with an ABSCIEX API 5000 mass spectrometer and a Sequant Zinc-hilic column (2.1 x 50 mm, 3 μm internal diameter). The mobile phase consisted of 20 mM ammonium acetate (A) in 90% acetonitrile and 20 mM ammonium acetate (B) in 10% acetonitrile. The separation method consisted of a gradient starting at 6% B, followed by a gradient to 8.5% B over 600 seconds, a gradient to 13% B over 400 seconds, followed by a gradient to 20% B over 60 seconds, a wash at 50% B over 60 seconds, and a final re-equilibration at 6% B over 220 seconds. Quantitation was performed using the following mass spectrometry transitions in negative electrospray ionization (ESI): 2'3'5'AMP: 346.1-134.1, 2'3'5'UMP: 323.0-97, 2'3'5'CMP: 322-97, 2'3'5'GMP: 362.1-211. Peak areas were compared to a standard curve consisting of purified compounds (purchased from Sigma-Aldrich, except for 2' and 3'CMP, UMP, and GMP, which were purchased from Biolog Life Science Institute) and normalized to an internal standard (adipic acid) added to the sample prior to analysis. For sample analysis, the standard curve was prepared in deionized water, diluted with the internal standard, and filtered, as described in the sample preparation steps herein.
[0232] result V. natriegens RNA was digested with purified E. coli RNase R, and E. coli RNA and yeast-derived RNA extracts were digested with both E. coli RNase R and nuclease P1. Depolymerization was monitored by the release of acid-soluble nucleotides. Treatment of E. coli and V. natriegens RNA with RNase R demonstrated time-dependent conversion of RNA to acid-soluble nucleotides, reaching approximately 98 to 100% depolymerization after 30 min of incubation (Figure 12A). Treatment of yeast-derived RNA extracts with nuclease P1 reached approximately 94% depolymerization (Figure 12A). Treatment of E. coli RNA with nuclease P1 also resulted in approximately 90% depolymerization (Figure 12A). Subsequent analysis by LC-MS revealed the release of 5' NMP in E. coli RNA and yeast-derived RNA extracts treated with nuclease P1 (Figure 12B). These results demonstrate that different nucleases (eg, RNase R and nuclease P1) can be used to digest diverse RNA sources (eg, Vibrio RNA, E. coli RNA, and yeast RNA) into 5'NMPs.
[0233] Example 5 - Effect of temperature and lysate inactivation on RNA depolymerization material and method Strains and lysates Strain GL17-086 (BL21(DE3).ΔtolC.Δph[DE3]1+2*.Δph[285p]*.ΔfhuA*.ΔlamB*. rna::tolC) and strain GL17-109 (BL21(DE3).ΔtolC.Δph[DE3]1+2*.Δph[285p]*.ΔfhuA*.ΔlamB*. Δrna*. ΔphoA*.ΔappA*.Δamn*.ΔnagD*.ΔushA::tolC) were used in the studies described herein. For both strains, 1 L cultures were grown under batch growth conditions in KORZ medium (5 g / L (NH4)2SO4, 15.7 g / L K2HPO4, 4.2 g / L KH2PO4, 1.7 g / L citric acid, 0.6 g / L MgSO4, 0.1% thiamine-HCl, 0.01% Pluronic, trace metals, and 40 g / L glucose) for approximately 7 hours. After growth, cells were centrifuged at 6000 g for 20 minutes and then stored at -80°C. Frozen biomass was thawed in 1.5x volume of 58.8 mM potassium phosphate monobasic solution and lysed by passing through an EmulsiFlex C3 homogenizer (Avestin) three times with recirculation at pulses of 15,000-20,000 psi. The lysate was clarified by spinning at 15000 g for 1 hour at 4° C. The lysate was then stored at −80° C. in single-use aliquots.
[0234] Analysis of RNA polymerization products at various temperatures Frozen lysates for both strains (086 and 109) were incubated at various temperatures to profile RNA depolymerization products and their potential degradation. Aliquots of lysates were thawed on ice and then dispensed into PCR strip tubes. The tubes were then incubated at 40°C, 50°C, 60°C, and 70°C for up to 1 hour with intermittent sampling. The initial t0 time point was taken by quenching the lysate while it was still on ice. For all other time points, samples were quenched in 5x volume of acetonitrile, and 60 μl was diluted into 500 μl of 50 μM adipic acid solution in 50 mM ammonium acetate and then subjected to LC-QQQ. MRM was used to quantify all four major nucleotides and their related derivatives (ATP, ADP, AMP, adenine, adenosine, GTP, GDP, GMP, guanine, guanosine, CTP, CDP, CMP, cytidine, cytosine, UTP, UDP, UMP, uridine, and uracil) at each time point. Base hydrolysis of the lysate was performed by incubating the lysate in 3x volume of 0.2 M NaOH at 99°C for 20 min, resulting in complete RNA hydrolysis to NMDA. It was then neutralized with an equal volume of 150 mM HCl, and 20 μl of this solution was diluted in 200 μl of 50 mM ammonium acetate solution with 50 μM adipic acid. The value for base-hydrolyzed lysate represents 100% depolymerization. Under some conditions, these lysates were incubated directly; under other conditions, the lysates were mixed with either 0.5 mg / ml nuclease P1 (Sigma N8630) or RNase R. RNase R was prepared as follows: cells were resuspended in 1.5x volume of lysis buffer (50 mM potassium phosphate, pH 7.4, 500 mM NaCl, 20 mM imidazole), lysed by three passes through an EmulsiFlex C3 homogenizer (Avestin) at 15,000-25,000 psi, and clarified at 16,000 g for 1 hour at 4°C. The supernatant was then purified via FPLC and then dialyzed overnight in 2x PBS.Proteins precipitated after dialysis were recovered by adding 500 mM NaCl and mixed with glycerol to obtain a 50% glycerol solution for aliquoting and storage at -20°C.
[0235] Analysis of the effects of dilution and pre-heat kill on RNA depolymerization Experiments were performed using GL17-109 lysate prepared as described herein. Lysates were prepared under a wide range of conditions. Across all conditions, reactions received the addition of 150 mM potassium phosphate (pH 7.4), 100 mM KCl, and 0.1 mM ZnCl2. All of the following conditions were tested with RNase R, nuclease P1, or without the addition of exogenous nuclease. Both nuclease stock solutions were prepared as previously described. Depolymerization reactions were performed under 80% and 50% dilution of the lysate in water. These were screened with the addition of 0.5 or 0.31 mg / ml of exogenous nuclease, respectively. Lysate mixtures were also prepared by creating a 1 mg / ml nuclease lysate and mixing it into unspiked lysate, yielding 0.064 and 0.04 mg / ml nuclease at 80% dilution or 0.04 and 0.025 mg / ml nuclease at 50% dilution. Finally, conditions in which the lysate did not contain spiked nuclease were tested, heat killed at 70°C for 15 minutes, and then mixed with either purified nuclease or still-active 1 mg / ml nuclease lysate. Samples were incubated at 37°C for 30 minutes, quenched in 5x volume of acetonitrile, and sampled by diluting into 1 ml of 50 μM adipic acid solution in 50 mM ammonium acetate. The quench solution was then spun down and filtered through a 0.2 μm filter plate, and the filtrate was subjected to LC-QQQ to measure NMPs, nucleosides and nucleobases.
[0236] result RNA nucleases (RNases) are known to have activity profiles that extend over a wider temperature range than many other enzymes from mesophilic sources, sometimes exhibiting activity up to 60°C despite being derived from organisms that evolved to grow at 37°C. Two separate studies were performed to evaluate the effect of elevated temperatures on RNA depolymerization in E. coli lysates. First, lysates from two separate strains were incubated over the course of 1 hour at temperatures above 37°C with or without the addition of one of two RNases—RNase R or RNase P1. The second study involved removing the lysate to remove deleterious enzyme activity and mixing this inactive lysate with active lysate or mixing exogenous nucleases into the inactivated lysate to study their potential effect on RNA depolymerization.
[0237] Improved depolymerization was observed when the lysate was incubated at 60°C and 70°C (Figure 13). Depolymerization improved in several ways. When RNA depolymerizes, it primarily produces NMPs. However, in active lysates, these NMPs continue to be degraded by other enzymes, and two major products—guanosine and uracil—accumulate in very large amounts. Incubating the lysate at 60°C and 70°C significantly reduced the accumulation of these nucleobases, even in lysates to which no exogenous RNase R or nuclease P1 was added (Figure 13). This indicated improved NMP stability in the lysate, since each mole of nucleobase correlates with the irreversible loss of NMPs from RNA. In addition, as shown in Figure 13, a dramatic improvement in total NMP accumulation was observed when RNase R was added at 70°C when exogenous nucleases were added under these temperature conditions. Base hydrolysis of GL17-109 lysate revealed a maximum concentration of 32.6 mM NMP. Correcting for dilution of added nuclease, the accumulation of approximately 22 mM NMP observed with RNase R at 70 °C represents a 75% yield. Assuming that tRNAs represent approximately 15% of the total RNA pool and that these nucleases are sequestered, this would represent a 94% yield of all accessible RNA. Depolymerization in GL17-086 was less across the board than GL17-109, which may be due to higher phosphorylytic activity (data not shown).
[0238] The effects of preheat inactivation and lysate dilution showed a small benefit, but only for lysates diluted at higher dilutions. In this study, two types of lysates were generated: a "reagent" lysate containing the RNA to be depolymerized, and a "catalyst" lysate containing an exogenous nuclease (RNase R or Nuclease P1). Many different conditions, as shown in Table 14 below, were evaluated to determine their effect on RNA depolymerization. Lysates diluted to only 80% showed similar depolymerization performance regardless of whether a portion of the lysate was heat-inactivated. However, lysates diluted to 50% performed slightly better when the majority of the RNA was present in the inactivated lysate. A 2.7% average improvement in depolymerization yield was observed across all conditions tested at this dilution rate. The performance of the depolymerization reaction under these conditions does not show a dramatic improvement, but works equally or slightly better, leaving open the possibility of performing heat inactivation before depolymerization should other parts of the process require it (e.g., to stop the growth of any unlysed cells that may remain in the culture, or to reduce the protein content in the lysate if a pelleting step is included after the heat treatment).
[0239] Table 14. Summary of RNA depolymerization yields across various mixtures of lysate, nuclease, and quenched lysate. Yield percentages are based on a 32.6 mM NMP basis quantified through lysate base hydrolysis of RNA. [Table 14]
[0240] Example 6: Cell-free generation of RNA using diverse nucleotide sources material and method Yeast RNA powder obtained from a commercial source was dissolved in water at 45-60 g / L and depolymerized using 1.2 g / L P1 nuclease in the presence of 0.05 mM zinc chloride at 70°C, pH 5.5-5.8 for 1 hour. The resulting depolymerized material was clarified by centrifugation and filtered using a 10 kDa MWCO filter. The resulting filtrate contained 5' nucleotide monophosphates (NMPs) at a total concentration of approximately 90-100 mM (approximately 20-25 mM AMP, CMP, GMP, and UMP). E. coli BL21(DE3) derivatives carrying pBAD24-derived vectors encoding individual kinase enzymes (TthCmk, PfPyrH, TmGmk, AaNdk, and DgPPK2) were grown in fermentation using standard techniques in Korz medium supplemented with 50 mg / L carbenicillin [Korz, DJ, Rinas, U., Hellmuth, K., Sanders, EA, & Deckwer, WD (1995). Simple fed-batch technique for high cell density cultivation of Escherichia coli. Journal of biotechnology, 39(1), 59-65.]. Protein expression was induced by the addition of L-arabinose. After harvest, lysates were prepared in 60 mM phosphate buffer using high-pressure homogenization, resulting in a mixture of approximately 40 g / L of total protein.
[0241] E. coli BL21(DE3) derivatives carrying pUC19-derived vectors containing one or more transcription templates (each consisting of a T7 promoter, a target sequence, and one or more transcription terminators) encoding a 524-bp double-stranded RNA sequence were cultured in fermentation in Korz medium using standard techniques [Phue, JN, Lee, SJ, Trinh, L., & Shiloach, J. (2008). Modified Escherichia coli B (BL21), a superior producer of plasmid DNA compared with Escherichia coli K (DH5alpha). Biotechnology and bioengineering, 101(4), 831.]. Following harvest, lysates were prepared by high-pressure homogenization, diluted, and heat-treated following a similar procedure. Using a similar procedure, an E. coli BL21(DE3) derivative carrying a pBAD24-derived vector encoding a thermostable T7 RNA polymerase enzyme was cultured, enzyme expression was induced, and a lysate was prepared. The polymerase enzyme was partially purified using a two-step ammonium sulfate fractionation. Reactions were assembled according to Table 15 in 30 mM phosphate buffer (pH 7).
[0242] Table 15. Reaction conditions [Table 15] To assemble the cell-free reaction, lysates containing kinase enzymes and template DNA were diluted, combined in equal proportions, and mixed with reaction additives such as magnesium sulfate and sodium hexametaphosphate. The lysates were incubated at 70°C for 15 minutes to preserve the activity of the overexpressed kinases while inactivating other enzymes. Cell-free reactions were initiated by the addition of RNA polymerase, incubated at 48°C for 1 hour, and analyzed according to established protocols [Nwokeoji, AO, Kilby, PM, Portwood, DE, & Dickman, MJ (2016). RNASwift: A rapid, versatile RNA extraction method free from phenol and chloroform. Analytical Biochemistry, 512, 36].
[0243] result Cell-free RNA synthesis reactions were performed using cellular RNA, an equimolar mixture of nucleoside 5'-monophosphates (AMP, CMP, GMP, UMP), or an equimolar mixture of 5'-nucleoside diphosphates (ADP, CDP, GDP, UDP). Similar titers of dsRNA product were produced for each nucleotide source (Figure 17). These results demonstrate that the cell-free reactions described herein can be used to synthesize RNA from multiple sources of nucleotides, including cellular RNA, nucleoside 5'-monophosphates, and nucleoside diphosphates.
[0244] Example 7: Cell-free generation of RNA using wild-type RNA polymerase material and method E. coli BL21(DE3) derivatives carrying pBAD24-derived vectors encoding hexahistidine-tagged thermostable or wild-type T7 RNA polymerase enzymes were cultured, enzyme expression induced, and lysates prepared using the procedures described herein. Polymerase enzymes were purified by fast protein liquid chromatography (FPLC) as described herein. Cell-free reactions were performed as described herein, except that the reactions were run over a range of temperatures (37-48°C) for 2 hours. dsRNA product titers were quantified as described herein.
[0245] result Cell-free RNA synthesis reactions were performed using wild-type T7 RNA polymerase or a thermostable mutant (Figure 18). Reactions performed with the thermostable mutant produced dsRNA products at 37°C and 48°C. In contrast, reactions performed with the wild-type polymerase produced product at 37°C but not at 48°C. These results indicate that the cell-free reactions described herein do not require a thermostable RNA polymerase, provided they are incubated at the appropriate temperature.
[0246] Example 8: Cell-free generation of NTPs using diverse nucleotide sources material and method Cell-free reactions were performed as described in Example 6, except that the template DNA lysate and RNA polymerase were omitted. Nucleotides were analyzed by HPLC using an adaptation of a published method [de Korte, D., Haverkort, WA, Roos, D., & van Gennip, AH (1985). Anion-exchange high performance liquid chromatography method for the quantitation of nucleotides in human blood cells. Clinica chimica acta; international journal of clinical chemistry, 148(3), 185.]
[0247] result Cell-free reactions to generate nucleotide 5'-triphosphates (NTPs: ATP, CTP, GTP, and UTP) were performed using cellular RNA, an equimolar mixture of nucleoside 5'-monophosphates (AMP, CMP, GMP, and UMP), or an equimolar mixture of 5'-nucleoside diphosphates (ADP, CDP, GDP, and UDP). Similar titers of each NTP were produced for each nucleotide source (Figure 19). These results indicate that the cell-free reactions described herein can also be used to produce NTPs by simply omitting the RNA polymerase and DNA template. Similar to the cell-free reactions that produce RNA described in Example 6, cell-free reactions that produce NTPs can utilize multiple sources of nucleotides, including cellular RNA, nucleoside 5'-monophosphates, and nucleoside diphosphates.
[0248] References [Table 16-1] [Table 16-2] [Table 16-3] [Table 16-4] [Table 16-5]
[0249] array [Table 17-1] [Table 17-2] [Table 17-3]
[0250] All references, patents, and patent applications disclosed herein are incorporated by reference for the means by which each is cited, which in some cases may include the entire document. The indefinite articles "a" and "an," as used herein in the specification and in the claims, unless clearly indicated to the contrary, should be understood to mean "at least one." Unless expressly indicated to the contrary, it should be understood that in any method claimed herein that includes more than one step or action, the order of the method steps or actions is not necessarily limited to the order in which the method steps or actions are described.
[0251] In the claims, as well as in the above specification, all transitional phrases, such as "comprising," "including," "carrying," "having," "containing," "involving," "holding," "composed of," and the like, are to be understood to be open-ended, i.e., to mean including, but not limited to. Only the transitional phrases "consisting of" and "consisting essentially of," respectively, shall be closed or semi-closed transitional phrases as set forth in the U.S. Patent Office, Manual of Patent Examining Procedures, Section 2111.03. The terms "about" and "substantially" preceding a numerical value mean ±10% of the stated numerical value. Where a range of values is provided, each value between the upper and lower limits of that range is specifically contemplated and described herein.
Claims
1. 1. A method for producing ribonucleic acid (RNA), comprising: (a) incubating (i) cellular RNA and (ii) a ribonuclease to generate 5' nucleoside monophosphates (NMPs); (b) removing ribonucleases; and (c) incubating the 5′ NMP with at least one NMP kinase, at least one NDP kinase, at least one polyphosphate kinase (PPK), polyphosphate, a deoxyribonucleic acid (DNA) template encoding the RNA of interest, and an RNA polymerase to produce the RNA of interest. Including, where: (i) the at least one NMP kinase is AMP kinase from Thermus thermophilus (SEQ ID NO: 12), CMP kinase from Thermus thermophilus (SEQ ID NO: 13), UMP kinase from Pyrococcus furiosus (SEQ ID NO: 14), and / or GMP kinase from Thermotoga maritima (SEQ ID NO: 15); and / or (ii) at least one NDP kinase is from Aquifex aeolicus (SEQ ID NO: 16); The method.
2. 10. The method of claim 1, wherein the ribonuclease is removed via temperature, pH, salt, detergent, alcohol or other solvent, chemical inhibitor, separation, precipitation, filtration, capture, and / or chromatography.
3. The method of claim 1 or 2, wherein the cellular RNA comprises ribosomal RNA, messenger RNA, and / or transfer RNA.
4. The method according to any one of claims 1 to 3, wherein the ribonuclease is nuclease P1 or RNase R.
5. The method of any one of claims 1 to 4, wherein the 5'NMP comprises 5'AMP, 5'GMP, 5'CMP, and / or 5'UMP.
6. 2. The method of claim 1, wherein the PPK is an enzyme of the PPK1 family or an enzyme of the PPK2 family.
7. 7. The method of claim 6, wherein the PPK is a class III PPK2 enzyme from Deinococcus geothermalis.
8. 8. The method of claim 1, wherein the polyphosphoric acid is selected from the group consisting of tetrapolyphosphoric acid, pentapolyphosphoric acid, and hexametaphosphoric acid.
9. 9. The method of any one of claims 1 to 8, wherein step (c) comprises an enzyme preparation or cell lysate obtained from cells producing the PPK, at least one NMP kinase, at least one NDP kinase, a deoxyribonucleic acid (DNA) template, and / or an RNA polymerase.
10. 10. The method of any one of claims 1 to 9, wherein the activity of the native enzyme in the cell lysate or enzyme preparation has been removed via genetic modification, enzyme secretion from the cell, protease targeting, temperature, pH, salt, detergent, alcohol or other solvent, chemical inhibitor, separation, precipitation, filtration, capture, and / or chromatography.
11. 11. The method of claim 10, wherein the native enzyme is selected from the group consisting of phosphatases, nucleases, proteases, deaminases, oxidoreductases, and hydrolases.
12. The method of any one of claims 1 to 11, wherein the at least one NMP kinase is an AMP kinase, a CMP kinase, a UMP kinase, or a GMP kinase.
13. 12. The method of any one of claims 1 to 11, wherein the at least one NMP kinase is (i) AMP kinase from Thermus thermophilus, CMP kinase from Thermus thermophilus, UMP kinase from Pyrococcus furiosus, and / or GMP kinase from Thermotoga maritima.
14. The method of any one of claims 1 to 13, wherein the at least one NDP kinase is from Aquifex aeolicus.
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