[
  {"id": 1, "accession": "PB24UZ", "plasticdb_id": "00001", "legacy_id": "00001", "visibility": "public", "name": "Cutinase g9562.t1", "database_name": null, "gene": "g9562", "genbank_id": null, "sequence": "MKFFTAITLFTALVAGAPLGMEELETRQSSTSTDLERGSSSNCPSAILIFARGSTEIGNMGSSVGPALSGALSQKVRGIWVQGVGGPYDAALGDNALPRGSSSSAIAEGVRLFKLAKSKCPNASVVAGGYSQGAALIAAAISDLDSSTRDQVKGAALFGYTQNKQNNGRIPNYPADRTKVYCAVGDLVCEGLLIVAPPHLTYNDEARGEAADFLASKV", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "Clonostachys rosea", "plastics": "PCL; PET", "result": "positive; positive", "methods": "clear_zone; uv_vis", "substrate_form": "amorphous_film,powder", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 1, "paper_citation": "Gambarini, V., Pavlov, N., Young, P., Dawes, S., Auffret, A., Kingsbury, J. M., Donaldson, L. A., Smith, D. A., Weaver, L., Pantos, O., Handley, K. M., & Lear, G. (2025). Molecular mechanisms of plastic biodegradation by the fungus Clonostachys rosea. mBio. https://doi.org/10.1128/mbio.00335-25", "paper_doi": "10.1128/mbio.00335-25", "paper_year": 2025, "kind": "wild_type", "parent_accession": null, "seq_id": "PB24UZ"},
  {"id": 2, "accession": "PBNH5N", "plasticdb_id": "00002", "legacy_id": "00002", "visibility": "public", "name": "Cutinase g16887.t1", "database_name": null, "gene": "g16887", "genbank_id": null, "sequence": "MPSLIVMAGLARLLVSGTLAAGLGAYNVDPNSVSVSGLSAGGFMAAQLGVAYSDTFKTGFGIFAGGPYDCARNQLYSSCMNNQNPSITKPVANMQSWSGNQIDPLANLQSRQIYMQVGSADRTVGPKPMNQLKAQLANFDDSSRVSFVTTVGAAHVFPTDFDGSGNNACGETRSPYISNCGYDGAGAVLKWMYGDLVPRNNGQLSGTLLSFSQTGTYGASGMDSTGYIYVPQACQGGSSVCKLHVALHGCAQSYGQIGAKFINNSGYNKWADTNNIIIHYPQAKTDYSVHPVWGGLILNNPNACFDWVGWYGSNADQKGGVQVQALVNQVNQITSGYTG", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "Clonostachys rosea", "plastics": "PCL; PET", "result": "positive; negative", "methods": "clear_zone; uv_vis", "substrate_form": "amorphous_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 1, "paper_citation": "Gambarini, V., Pavlov, N., Young, P., Dawes, S., Auffret, A., Kingsbury, J. M., Donaldson, L. A., Smith, D. A., Weaver, L., Pantos, O., Handley, K. M., & Lear, G. (2025). Molecular mechanisms of plastic biodegradation by the fungus Clonostachys rosea. mBio. https://doi.org/10.1128/mbio.00335-25", "paper_doi": "10.1128/mbio.00335-25", "paper_year": 2025, "kind": "wild_type", "parent_accession": null, "seq_id": "PBNH5N"},
  {"id": 3, "accession": "PBFCTW", "plasticdb_id": "00003", "legacy_id": "00003", "visibility": "public", "name": "PETase", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MNFPRASRLMQAAVLGGLMAVSAAATAQTNPYARGPNPTAASLEASAGPFTVRSFTVSRPSGYGAGTVYYPTNAGGTVGAIAIVPGYTARQSSIKWWGPRLASHGFVVITIDTNSTLDQPSSRSSQQMAALRQVASLNGTSSSPIYGKVDTARMGVMGWSMGGGGSLISAANNPSLKAAAPQAPWDSSTNFSSVTVPTLIFACENDSIAPVNSSALPIYDSMSRNAKQFLEINGGSHSCANSGNSNQALIGKKGVAWMKRFMDNDTRYSTFACENPNSTRVSDFRTANCS", "has_signal_peptide": null, "uniprot_accession": "A0A0K8P6T7", "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": "5xfy", "pdb_resolution": 1.4, "pdb_method": "X-RAY DIFFRACTION", "pdb_deposition_date": "2017-04-11", "source_microorganism": "Pseudideonella sakaiensis", "plastics": "PET", "result": "positive", "methods": "enzyme_assay,hplc,sem", "substrate_form": "amorphous_film,crystalline_film,model_substrate", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 3, "paper_citation": "Yoshida, S., Hiraga, K., Takehana, T., Taniguchi, I., Yamaji, H., Maeda, Y., Toyohara, K., Miyamoto, K., Kimura, Y., & Oda, K. (2016). A bacterium that degrades and assimilates poly(ethylene terephthalate). Science, 351(6278), 1196-1199.", "paper_doi": "10.1126/science.aad6359", "paper_year": 2016, "kind": "wild_type", "parent_accession": null, "seq_id": "PBFCTW"},
  {"id": 4, "accession": "PB6JCU", "plasticdb_id": "00004", "legacy_id": "00004", "visibility": "public", "name": "LCC", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MDGVLWRVRTAALMAALLALAAWALVWASPSVEAQSNPYQRGPNPTRSALTADGPFSVATYTVSRLSVSGFGGGVIYYPTGTSLTFGGIAMSPGYTADASSLAWLGRRLASHGFVVLVINTNSRFDYPDSRASQLSAALNYLRTSSPSAVRARLDANRLAVAGHSMGGGGTLRIAEQNPSLKAAVPLTPWHTDKTFNTSVPVLIVGAEADTVAPVSQHAIPFYQNLPSTTPKVYVELDNASHFAPNSNNAAISVYTISWMKLWVDNDTRYRQFLCNVNDPALSDFRTNNRHCQ", "has_signal_peptide": null, "uniprot_accession": "G9BY57", "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": "4eb0", "pdb_resolution": 1.5, "pdb_method": "X-RAY DIFFRACTION", "pdb_deposition_date": "2012-03-23", "source_microorganism": "uncultured bacterium", "plastics": "PET", "result": "positive", "methods": "enzyme_assay,hplc", "substrate_form": "amorphous_film,crystalline_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 3, "paper_citation": "Yoshida, S., Hiraga, K., Takehana, T., Taniguchi, I., Yamaji, H., Maeda, Y., Toyohara, K., Miyamoto, K., Kimura, Y., & Oda, K. (2016). A bacterium that degrades and assimilates poly(ethylene terephthalate). Science, 351(6278), 1196-1199.", "paper_doi": "10.1126/science.aad6359", "paper_year": 2016, "kind": "wild_type", "parent_accession": null, "seq_id": "PB6JCU"},
  {"id": 5, "accession": "PBRE2B", "plasticdb_id": "00005", "legacy_id": "00005", "visibility": "public", "name": "Cut190", "database_name": null, "gene": null, "genbank_id": "BAO42836.1", "sequence": "MRIRRQAGTGARASMARAIGVMTTALAVLVGAVGGVAGAEVSTAQDNPYERGPDPTEDSIEAIRGPFSVATERVSSFASGFGGGTIYYPRETDEGTFGAVAVAPGFTASQGSMSWYGERVASQGFIVFTIDTNTRLDQPGQRGRQLLAALDYLVERSDRKVRERLDPNRLAVMGHSMGGGGSLEATVMRPSLKASIPLTPWNLDKTWGQVQVPTFIIGAELDTIASVRTHAKPFYESLPSSLPKAYMELDGATHFAPNIPNTTIAKYVISWLKRFVDEDTRYSQFLCPNPTDRAIEEYRSTCPY", "has_signal_peptide": null, "uniprot_accession": "W0TJ64", "uniprot_protein_name": "Cutinase", "ec_number": null, "uniprot_go_terms": "[{\"id\": \"GO:0052689\", \"aspect\": \"F:carboxylic ester hydrolase activity\", \"evidence\": \"IEA:UniProtKB-ARBA\"}, {\"id\": \"GO:0046872\", \"aspect\": \"F:metal ion binding\", \"evidence\": \"IEA:UniProtKB-KW\"}]", "pdb_id": "4wfi", "pdb_resolution": 1.446, "pdb_method": "X-RAY DIFFRACTION", "pdb_deposition_date": "2014-09-15", "source_microorganism": "Saccharomonospora viridis", "plastics": "PET", "result": "positive", "methods": "hplc", "substrate_form": "amorphous_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 2, "paper_citation": "Lu, H., Diaz, D. J., Czarnecki, N. J., Zhu, C., Kim, W., Shroff, R., Acosta, D. J., Alexander, B. R., Cole, H. O., Zhang, Y., Lynd, N. A., Ellington, A. D., & Alper, H. S. (2022). Machine learning-aided engineering of hydrolases for PET depolymerization. Nature, 604(7907), 662-667.", "paper_doi": "10.1038/s41586-022-04599-z", "paper_year": 2022, "kind": "wild_type", "parent_accession": null, "seq_id": "PBRE2B"},
  {"id": 7, "accession": "PBERS5", "plasticdb_id": "00007", "legacy_id": "00007", "visibility": "public", "name": "TfH", "database_name": null, "gene": null, "genbank_id": null, "sequence": null, "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "Thermobifida fusca", "plastics": "PET", "result": "positive", "methods": "enzyme_assay", "substrate_form": "amorphous_film,crystalline_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 3, "paper_citation": "Yoshida, S., Hiraga, K., Takehana, T., Taniguchi, I., Yamaji, H., Maeda, Y., Toyohara, K., Miyamoto, K., Kimura, Y., & Oda, K. (2016). A bacterium that degrades and assimilates poly(ethylene terephthalate). Science, 351(6278), 1196-1199.", "paper_doi": "10.1126/science.aad6359", "paper_year": 2016, "kind": "wild_type", "parent_accession": null, "seq_id": "PBERS5"},
  {"id": 8, "accession": "PBDPN7", "plasticdb_id": "00008", "legacy_id": "00008", "visibility": "public", "name": "FsC", "database_name": null, "gene": null, "genbank_id": null, "sequence": null, "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "Fusarium solani", "plastics": "PET", "result": "positive", "methods": "enzyme_assay", "substrate_form": "amorphous_film,crystalline_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 3, "paper_citation": "Yoshida, S., Hiraga, K., Takehana, T., Taniguchi, I., Yamaji, H., Maeda, Y., Toyohara, K., Miyamoto, K., Kimura, Y., & Oda, K. (2016). A bacterium that degrades and assimilates poly(ethylene terephthalate). Science, 351(6278), 1196-1199.", "paper_doi": "10.1126/science.aad6359", "paper_year": 2016, "kind": "wild_type", "parent_accession": null, "seq_id": "PBDPN7"},
  {"id": 1, "accession": "PBVPYT", "plasticdb_id": null, "legacy_id": null, "visibility": "public", "name": "FAST-PETase", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MNFPRASRLMQAAVLGGLMAVSAAATAQTNPYARGPNPTAASLEASAGPFTVRSFTVSRPSGYGAGTVYYPTNAGGTVGAIAIVPGYTARQSSIKWWGPRLASHGFVVITIDTNSTLDQPESRSSQQMAALRQVASLNGTSSSPIYGKVDTARMGVMGWSMGGGGSLISAANNPSLKAAAPQAPWHSSTNFSSVTVPTLIFACENDSIAPVNSSALPIYDSMSQNAKQFLEIKGGSHSCANSGNSNQALIGKKGVAWMKRFMDNDTRYSTFACENPNSTAVSDFRTANCS", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": "8J45", "pdb_resolution": 1.49, "pdb_method": "X-RAY DIFFRACTION", "pdb_deposition_date": "2023-04-19", "source_microorganism": "Pseudideonella sakaiensis", "plastics": "PET", "result": "positive", "methods": "afm,dsc,hplc,sem,weight_loss", "substrate_form": "amorphous_film,crystalline_film,whole_polymer", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 2, "paper_citation": "Lu, H., Diaz, D. J., Czarnecki, N. J., Zhu, C., Kim, W., Shroff, R., Acosta, D. J., Alexander, B. R., Cole, H. O., Zhang, Y., Lynd, N. A., Ellington, A. D., & Alper, H. S. (2022). Machine learning-aided engineering of hydrolases for PET depolymerization. Nature, 604(7907), 662-667.", "paper_doi": "10.1038/s41586-022-04599-z", "paper_year": 2022, "kind": "engineered", "parent_accession": "PBFCTW", "seq_id": "PBVPYT"},
  {"id": 2, "accession": "PB6CC8", "plasticdb_id": null, "legacy_id": null, "visibility": "public", "name": "ThermoPETase", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MNFPRASRLMQAAVLGGLMAVSAAATAQTNPYARGPNPTAASLEASAGPFTVRSFTVSRPSGYGAGTVYYPTNAGGTVGAIAIVPGYTARQSSIKWWGPRLASHGFVVITIDTNSTLDQPESRSSQQMAALRQVASLNGTSSSPIYGKVDTARMGVMGWSMGGGGSLISAANNPSLKAAAPQAPWHSSTNFSSVTVPTLIFACENDSIAPVNSSALPIYDSMSRNAKQFLEINGGSHSCANSGNSNQALIGKKGVAWMKRFMDNDTRYSTFACENPNSTAVSDFRTANCS", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "Pseudideonella sakaiensis", "plastics": "PET", "result": "positive", "methods": "hplc", "substrate_form": "amorphous_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 2, "paper_citation": "Lu, H., Diaz, D. J., Czarnecki, N. J., Zhu, C., Kim, W., Shroff, R., Acosta, D. J., Alexander, B. R., Cole, H. O., Zhang, Y., Lynd, N. A., Ellington, A. D., & Alper, H. S. (2022). Machine learning-aided engineering of hydrolases for PET depolymerization. Nature, 604(7907), 662-667.", "paper_doi": "10.1038/s41586-022-04599-z", "paper_year": 2022, "kind": "engineered", "parent_accession": "PBFCTW", "seq_id": "PB6CC8"},
  {"id": 3, "accession": "PBN74C", "plasticdb_id": null, "legacy_id": null, "visibility": "public", "name": "DuraPETase", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MNFPRASRLMQAAVLGGLMAVSAAATAQTNPYARGPNPTAASLEASAGPFTVRSFTVSRPSGYGAGTVYYPTNAGGTVGAIAIVPGYTARQSSIKWWGPRLASHGFVVITIDTNSTFDYPSSRSSQQMAALRQVASLNGDSSSPIYGKVDTARMGVMGHSMGGGASLRSAANNPSLKAAIPQAPWDSQTNFSSVTVPTLIFACENDSIAPVNSHALPIYDSMSRNAKQFLEINGGSHSCANSGNSNQALIGKKGVAWMKRFMDNDTRYSTFACENPNSTAVSDFRTANCS", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": "6KY5", "pdb_resolution": 1.631, "pdb_method": "X-RAY DIFFRACTION", "pdb_deposition_date": "2019-09-16", "source_microorganism": "Pseudideonella sakaiensis", "plastics": "PET", "result": "positive", "methods": "hplc", "substrate_form": "amorphous_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 2, "paper_citation": "Lu, H., Diaz, D. J., Czarnecki, N. J., Zhu, C., Kim, W., Shroff, R., Acosta, D. J., Alexander, B. R., Cole, H. O., Zhang, Y., Lynd, N. A., Ellington, A. D., & Alper, H. S. (2022). Machine learning-aided engineering of hydrolases for PET depolymerization. Nature, 604(7907), 662-667.", "paper_doi": "10.1038/s41586-022-04599-z", "paper_year": 2022, "kind": "engineered", "parent_accession": "PBFCTW", "seq_id": "PBN74C"},
  {"id": 4, "accession": "PBR42U", "plasticdb_id": null, "legacy_id": null, "visibility": "public", "name": "ICCM", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MDGVLWRVRTAALMAALLALAAWALVWASPSVEAQSNPYQRGPNPTRSALTADGPFSVATYTVSRLSVSGFGGGVIYYPTGTSLTFGGIAMSPGYTADASSLAWLGRRLASHGFVVLVINTNSRFDYPDSRASQLSAALNYLRTSSPSAVRARLDANRLAVAGHSMGGGGTLRIAEQNPSLKAAVPLTPWHTDKTFNTSVPVLIVGAEADTVAPVSQHAIPFYQNLPSTTPKVYVELCNASHIAPMSNNAAISVYTISWMKLWVDNDTRYRQFLCNVNDPALCDFRTNNRHCQ", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "uncultured bacterium", "plastics": "PET", "result": "positive", "methods": "hplc", "substrate_form": "amorphous_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 2, "paper_citation": "Lu, H., Diaz, D. J., Czarnecki, N. J., Zhu, C., Kim, W., Shroff, R., Acosta, D. J., Alexander, B. R., Cole, H. O., Zhang, Y., Lynd, N. A., Ellington, A. D., & Alper, H. S. (2022). Machine learning-aided engineering of hydrolases for PET depolymerization. Nature, 604(7907), 662-667.", "paper_doi": "10.1038/s41586-022-04599-z", "paper_year": 2022, "kind": "engineered", "parent_accession": "PB6JCU", "seq_id": "PBR42U"},
  {"id": 5, "accession": "PB6TK6", "plasticdb_id": null, "legacy_id": null, "visibility": "public", "name": "LCC D238K", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MDGVLWRVRTAALMAALLALAAWALVWASPSVEAQSNPYQRGPNPTRSALTADGPFSVATYTVSRLSVSGFGGGVIYYPTGTSLTFGGIAMSPGYTADASSLAWLGRRLASHGFVVLVINTNSRFDYPDSRASQLSAALNYLRTSSPSAVRARLDANRLAVAGHSMGGGGTLRIAEQNPSLKAAVPLTPWHTDKTFNTSVPVLIVGAEADTVAPVSQHAIPFYQNLPSTTPKVYVELKNASHFAPNSNNAAISVYTISWMKLWVDNDTRYRQFLCNVNDPALSDFRTNNRHCQ", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "uncultured bacterium", "plastics": "PET", "result": "positive", "methods": "hplc", "substrate_form": "amorphous_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 2, "paper_citation": "Lu, H., Diaz, D. J., Czarnecki, N. J., Zhu, C., Kim, W., Shroff, R., Acosta, D. J., Alexander, B. R., Cole, H. O., Zhang, Y., Lynd, N. A., Ellington, A. D., & Alper, H. S. (2022). Machine learning-aided engineering of hydrolases for PET depolymerization. Nature, 604(7907), 662-667.", "paper_doi": "10.1038/s41586-022-04599-z", "paper_year": 2022, "kind": "engineered", "parent_accession": "PB6JCU", "seq_id": "PB6TK6"},
  {"id": 6, "accession": "PBBJHM", "plasticdb_id": null, "legacy_id": null, "visibility": "public", "name": "Cut190 D250K", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MRIRRQAGTGARASMARAIGVMTTALAVLVGAVGGVAGAEVSTAQDNPYERGPDPTEDSIEAIRGPFSVATERVSSFASGFGGGTIYYPRETDEGTFGAVAVAPGFTASQGSMSWYGERVASQGFIVFTIDTNTRLDQPGQRGRQLLAALDYLVERSDRKVRERLDPNRLAVMGHSMGGGGSLEATVMRPSLKASIPLTPWNLDKTWGQVQVPTFIIGAELDTIASVRTHAKPFYESLPSSLPKAYMELKGATHFAPNIPNTTIAKYVISWLKRFVDEDTRYSQFLCPNPTDRAIEEYRSTCPY", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "Saccharomonospora viridis", "plastics": "PET", "result": "positive", "methods": "hplc", "substrate_form": "amorphous_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 2, "paper_citation": "Lu, H., Diaz, D. J., Czarnecki, N. J., Zhu, C., Kim, W., Shroff, R., Acosta, D. J., Alexander, B. R., Cole, H. O., Zhang, Y., Lynd, N. A., Ellington, A. D., & Alper, H. S. (2022). Machine learning-aided engineering of hydrolases for PET depolymerization. Nature, 604(7907), 662-667.", "paper_doi": "10.1038/s41586-022-04599-z", "paper_year": 2022, "kind": "engineered", "parent_accession": "PBRE2B", "seq_id": "PBBJHM"},
  {"id": 7, "accession": "PBZQ49", "plasticdb_id": null, "legacy_id": null, "visibility": "public", "name": "ICCM C238K/C283S", "database_name": null, "gene": null, "genbank_id": null, "sequence": "MDGVLWRVRTAALMAALLALAAWALVWASPSVEAQSNPYQRGPNPTRSALTADGPFSVATYTVSRLSVSGFGGGVIYYPTGTSLTFGGIAMSPGYTADASSLAWLGRRLASHGFVVLVINTNSRFDYPDSRASQLSAALNYLRTSSPSAVRARLDANRLAVAGHSMGGGGTLRIAEQNPSLKAAVPLTPWHTDKTFNTSVPVLIVGAEADTVAPVSQHAIPFYQNLPSTTPKVYVELKNASHIAPMSNNAAISVYTISWMKLWVDNDTRYRQFLCNVNDPALSDFRTNNRHCQ", "has_signal_peptide": null, "uniprot_accession": null, "uniprot_protein_name": null, "ec_number": null, "uniprot_go_terms": null, "pdb_id": null, "pdb_resolution": null, "pdb_method": null, "pdb_deposition_date": null, "source_microorganism": "uncultured bacterium", "plastics": "PET", "result": "positive", "methods": "hplc", "substrate_form": "amorphous_film", "n_kinetic_measurements": 0, "best_kcat_km": null, "best_kcat_km_unit": null, "paper_id": 2, "paper_citation": "Lu, H., Diaz, D. J., Czarnecki, N. J., Zhu, C., Kim, W., Shroff, R., Acosta, D. J., Alexander, B. R., Cole, H. O., Zhang, Y., Lynd, N. A., Ellington, A. D., & Alper, H. S. (2022). Machine learning-aided engineering of hydrolases for PET depolymerization. Nature, 604(7907), 662-667.", "paper_doi": "10.1038/s41586-022-04599-z", "paper_year": 2022, "kind": "engineered", "parent_accession": "PB6JCU", "seq_id": "PBZQ49"}
]