Show simple item record

Modularly Programmable Nanoparticle Vaccine Based on Polyethyleneimine for Personalized Cancer Immunotherapy

dc.contributor.authorNam, Jutaek
dc.contributor.authorSon, Sejin
dc.contributor.authorPark, Kyung Soo
dc.contributor.authorMoon, James J.
dc.date.accessioned2021-04-06T02:12:01Z
dc.date.available2022-04-05 22:11:59en
dc.date.available2021-04-06T02:12:01Z
dc.date.issued2021-03
dc.identifier.citationNam, Jutaek; Son, Sejin; Park, Kyung Soo; Moon, James J. (2021). "Modularly Programmable Nanoparticle Vaccine Based on Polyethyleneimine for Personalized Cancer Immunotherapy." Advanced Science 8(5): n/a-n/a.
dc.identifier.issn2198-3844
dc.identifier.issn2198-3844
dc.identifier.urihttps://hdl.handle.net/2027.42/167070
dc.description.abstractNanoparticles (NPs) can serve as a promising vaccine delivery platform for improving pharmacological property and codelivery of antigens and adjuvants. However, NP‐based vaccines are generally associated with complex synthesis and postmodification procedures, which pose technical and manufacturing challenges for tailor‐made vaccine production. Here, modularly programmed, polyethyleneimine (PEI)‐based NP vaccines are reported for simple production of personalized cancer vaccines. Briefly, PEI is conjugated with neoantigens by facile coupling chemistry, followed by electrostatic assembly with CpG adjuvants, leading to the self‐assembly of nontoxic, sub‐50 nm PEI NPs. Importantly, PEI NPs promote activation and antigen cross‐presentation of antigen‐presenting cells and cross‐priming of neoantigen‐specific CD8+ T cells. Surprisingly, after only a single intratumoral injection, PEI NPs with optimal PEGylation elicit as high as ≈30% neoantigen‐specific CD8+ T cell response in the systemic circulation and sustain elevated CD8+ T cell response over 3 weeks. PEI‐based nanovaccines exert potent antitumor efficacy against pre‐established local tumors as well as highly aggressive metastatic tumors. PEI engineering for modular incorporation of neoantigens and adjuvants offers a promising strategy for rapid and facile production of personalized cancer vaccines.Modularly programmed, polyethyleneimine (PEI)‐based nanoparticle (NP) vaccines are developed for simple production of personalized cancer vaccines. PEI‐antigen conjugates and CpG adjuvants are mixed form nontoxic, sub‐50 nm PEI NPs. PEI NPs elicit strong, long‐lasting neoantigen‐specific CD8+ T cell response with potent antitumor efficacy against local as well as metastatic tumors. PEI NPs offer a promising strategy for personalized cancer vaccination.
dc.publisherWiley Periodicals, Inc.
dc.subject.othercancer vaccines
dc.subject.otherimmunotherapy
dc.subject.othernanoparticles
dc.subject.otherneoantigens
dc.titleModularly Programmable Nanoparticle Vaccine Based on Polyethyleneimine for Personalized Cancer Immunotherapy
dc.typeArticle
dc.rights.robotsIndexNoFollow
dc.subject.hlbsecondlevelMaterials Science and Engineering
dc.subject.hlbtoplevelEngineering
dc.description.peerreviewedPeer Reviewed
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/167070/1/advs2263_am.pdf
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/167070/2/advs2263-sup-0001-SuppMat.pdf
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/167070/3/advs2263.pdf
dc.identifier.doi10.1002/advs.202002577
dc.identifier.sourceAdvanced Science
dc.identifier.citedreferencea) J. S. Suk, Q. Xu, N. Kim, J. Hanes, L. M. Ensign, Adv. Drug Delivery Rev. 2016, 99, 28; b) J. Nam, N. Won, J. Bang, H. Jin, J. Park, S. Jung, S. Jung, Y. Park, S. Kim, Adv. Drug Delivery Rev. 2013, 65, 622.
dc.identifier.citedreferenceS. Nierkens, M. H. den Brok, T. Roelofsen, J. A. L. Wagenaars, C. G. Figdor, T. J. Ruers, G. J. Adema, PLoS One 2009, 4, 8368.
dc.identifier.citedreferenceJ. Nam, S. Son, J. J. Moon, Cell Mol. Bioeng. 2017, 10, 341.
dc.identifier.citedreferenceM. B. Lutz, N. Kukutsch, A. L. J. Ogilvie, S. Rößner, F. Koch, N. Romani, G. Schuler, J. Immunol. Methods 1999, 223, 77.
dc.identifier.citedreferencea) S. Yang, S. May, J. Chem. Phys. 2008, 129, 185105; b) A. Akinc, M. Thomas, A. M. Klibanov, R. Langer, The J. Gene Med. 2005, 7, 657.
dc.identifier.citedreferenceO. P. Joffre, E. Segura, A. Savina, S. Amigorena, Nat. Rev. Immunol. 2012, 12, 557.
dc.identifier.citedreferencea) L. M. Kranz, M. Diken, H. Haas, S. Kreiter, C. Loquai, K. C. Reuter, M. Meng, D. Fritz, F. Vascotto, H. Hefesha, C. Grunwitz, M. Vormehr, Y. Hüsemann, A. Selmi, A. N. Kuhn, J. Buck, E. Derhovanessian, R. Rae, S. Attig, J. Diekmann, R. A. Jabulowsky, S. Heesch, J. Hassel, P. Langguth, S. Grabbe, C. Huber, Ö. Türeci, U. Sahin, Nature 2016, 534, 396; b) R. Kuai, L. J. Ochyl, K. S. Bahjat, A. Schwendeman, J. J. Moon, Nat. Mater. 2017, 16, 489; c) G. M. Lynn, C. Sedlik, F. Baharom, Y. Zhu, R. A. Ramirez‐Valdez, V. L. Coble, K. Tobin, S. R. Nichols, Y. Itzkowitz, N. Zaidi, J. M. Gammon, N. J. Blobel, J. Denizeau, P. de la Rochere, B. J. Francica, B. Decker, M. Maciejewski, J. Cheung, H. Yamane, M. G. Smelkinson, J. R. Francica, R. Laga, J. D. Bernstock, L. W. Seymour, C. G. Drake, C. M. Jewell, O. Lantz, E. Piaggio, A. S. Ishizuka, R. A. Seder, Nat. Biotechnol. 2020, 38, 320; d) C. Xu, J. Nam, H. Hong, Y. Xu, J. J. Moon, ACS Nano 2019, 13, 12148.
dc.identifier.citedreferenceU. Sahin, Ö. Türeci, Science 2018, 359, 1355.
dc.identifier.citedreferencea) J. M. Blander, R. Medzhitov, Nat. Immunol. 2006, 7, 1029; b) S. Nierkens, M. H. den Brok, R. P. M. Sutmuller, O. M. Grauer, E. Bennink, M. E. Morgan, C. G. Figdor, T. J. M. Ruers, G. J. Adema, Cancer Res. 2008, 68, 5390.
dc.identifier.citedreferencea) E. R. Kandimalla, L. Bhagat, D. Yu, Y. Cong, J. Tang, S. Agrawal, Bioconjugate Chem. 2002, 13, 966; b) M. R. Putta, F.‐G. Zhu, D. Wang, L. Bhagat, M. Dai, E. R. Kandimalla, S. Agrawal, Bioconjugate Chem. 2010, 21, 39.
dc.identifier.citedreferenceS. M. Moghimi, P. Symonds, J. C. Murray, A. C. Hunter, G. Debska, A. Szewczyk, Mol. Ther. 2005, 11, 990.
dc.identifier.citedreferenceS. L. Snyder, P. Z. Sobocinski, Anal. Biochem. 1975, 64, 284.
dc.identifier.citedreferencea) H. Petersen, P. M. Fechner, A. L. Martin, K. Kunath, S. Stolnik, C. J. Roberts, D. Fischer, M. C. Davies, T. Kissel, Bioconjugate Chem. 2002, 13, 845; b) M. Ogris, G. Walker, T. Blessing, R. Kircheis, M. Wolschek, E. Wagner, J. Controlled Release 2003, 91, 173; c) M. Ogris, S. Brunner, S. Schüller, R. Kircheis, E. Wagner, Gene Ther. 1999, 6, 595; d) M. Kursa, G. F. Walker, V. Roessler, M. Ogris, W. Roedl, R. Kircheis, E. Wagner, Bioconjugate Chem. 2003, 14, 222.
dc.identifier.citedreferenceP. Nair‐Gupta, A. Baccarini, N. Tung, F. Seyffer, O. Florey, Y. Huang, M. Banerjee, M. Overholtzer, P. A. Roche, R. Tampé, B. D. Brown, D. Amsen, S. W. Whiteheart, J. M. Blander, Cell 2014, 158, 506.
dc.identifier.citedreferenceF. Veglia, V. A. Tyurin, D. Mohammadyani, M. Blasi, E. K. Duperret, L. Donthireddy, A. Hashimoto, A. Kapralov, A. Amoscato, R. Angelini, S. Patel, K. Alicea‐Torres, D. Weiner, M. E. Murphy, J. Klein‐Seetharaman, E. Celis, V. E. Kagan, D. I. Gabrilovich, Nat. Commun. 2017, 8, 2122.
dc.identifier.citedreferenceL. Jeanbart, M. Ballester, A. de Titta, P. Corthésy, P. Romero, J. A. Hubbell, M. A. Swartz, Cancer Immunol. Res. 2014, 2, 436.
dc.identifier.citedreferencea) S. Aras, M. R. Zaidi, Br. J. Cancer 2017, 117, 1583; b) J. M. Jaynes, R. Sable, M. Ronzetti, W. Bautista, Z. Knotts, A. Abisoye‐Ogunniyan, D. Li, R. Calvo, M. Dashnyam, A. Singh, T. Guerin, J. White, S. Ravichandran, P. Kumar, K. Talsania, V. Chen, A. Ghebremedhin, B. Karanam, A. Bin Salam, R. Amin, T. Odzorig, T. Aiken, V. Nguyen, Y. Bian, J. C. Zarif, A. E. de Groot, M. Mehta, L. Fan, X. Hu, A. Simeonov, N. Pate, M. Abu‐Asab, M. Ferrer, N. Southall, C.‐Y. Ock, Y. Zhao, H. Lopez, S. Kozlov, N. de Val, C. C. Yates, B. Baljinnyam, J. Marugan, U. Rudloff, Sci. Transl. Med. 2020, 12, eaax6337; c) T. M. Raimondo, D. J. Mooney, Proc. Natl. Acad. Sci. USA 2018, 115, 10648; d) Q. Li, A. Shen, Z. Wang, RSC Adv. 2020, 10, 16537.
dc.identifier.citedreferencea) A. Marabelle, L. Tselikas, T. de Baere, R. Houot, Ann. Oncol. 2017, 28, xii33; b) M. A. Aznar, N. Tinari, A. J. Rullán, A. R. Sánchez‐Paulete, M. E. Rodriguez‐Ruiz, I. Melero, J. Immunol. 2017, 198, 31.
dc.identifier.citedreferenceD. S. Chen, I. Mellman, Immunity 2013, 39, 1.
dc.identifier.citedreferencea) O. Boussif, F. Lezoualc’h, M. A. Zanta, M. D. Mergny, D. Scherman, B. Demeneix, J. P. Behr, Proc. Natl. Acad. Sci. USA 1995, 92, 7297; b) U. Lungwitz, M. Breunig, T. Blunk, A. Göpferich, Eur. J. Pharm. Biopharm. 2005, 60, 247.
dc.identifier.citedreferencea) C. Shen, J. Li, Y. Zhang, Y. Li, G. Shen, J. Zhu, J. Tao, Int. J. Nanomed. 2017, 12, 5443; b) K. Regnström, E. G. E. Ragnarsson, M. Köping‐Höggård, E. Torstensson, H. Nyblom, P. Artursson, Gene Ther. 2003, 10, 1575.
dc.identifier.citedreferencea) F. Wegmann, K. H. Gartlan, A. M. Harandi, S. A. Brinckmann, M. Coccia, W. R. Hillson, W. L. Kok, S. Cole, L.‐P. Ho, T. Lambe, M. Puthia, C. Svanborg, E. M. Scherer, G. Krashias, A. Williams, J. N. Blattman, P. D. Greenberg, R. A. Flavell, A. E. Moghaddam, N. C. Sheppard, Q. J. Sattentau, Nat. Biotechnol. 2012, 30, 883; b) N. C. Sheppard, S. A. Brinckmann, K. H. Gartlan, M. Puthia, C. Svanborg, G. Krashias, S. C. Eisenbarth, R. A. Flavell, Q. J. Sattentau, F. Wegmann, Int. Immunol. 2014, 26, 531; c) E. V. Grant, M. Thomas, J. Fortune, A. M. Klibanov, N. L. Letvin, Eur. J. Immunol. 2012, 42, 2937; d) M. Bivas‐Benita, L. Bar, G. O. Gillard, D. R. Kaufman, N. L. Simmons, A.‐H. Hovav, N. L. Letvin, J. Virol. 2010, 84, 5764; e) M. Rodrigo Garzón, P. Berraondo, J. Crettaz, L. Ochoa, M. Vera, J. J. Lasarte, A. Vales, N. Van Rooijen, J. Ruiz, J. Prieto, J. Zulueta, G. González‐Aseguinolaza, Vaccine 2005, 23, 1384; f) B.‐S. Shim, S.‐M. Park, J.‐S. Quan, D. Jere, H. Chu, M. K. Song, D. W. Kim, Y.‐S. Jang, M.‐S. Yang, S. H. Han, Y.‐H. Park, C.‐S. Cho, C.‐H. Yun, BMC Immunol. 2010, 11, 65.
dc.identifier.citedreferencea) Y.‐F. Ma, Y.‐W. Yang, Eur. J. Pharm. Sci. 2010, 40, 75; b) Z. Sun, B. Liu, X. Ruan, Q. Liu, Mol. Med. Rep. 2014, 10, 2657.
dc.identifier.citedreferencea) R. N. Palumbo, X. Zhong, C. Wang, J. Controlled Release 2012, 157, 86; b) R. M. Steinman, M. C. Nussenzweig, Proc. Natl. Acad. Sci. USA 2002, 99, 351.
dc.identifier.citedreferenceH. Petersen, P. M. Fechner, D. Fischer, T. Kissel, Macromolecules 2002, 35, 6867.
dc.identifier.citedreferenceM. Jäger, S. Schubert, S. Ochrimenko, D. Fischer, U. S. Schubert, Chem. Soc. Rev. 2012, 41, 4755.
dc.identifier.citedreferenceN. P. Gabrielson, D. W. Pack, Biomacromolecules 2006, 7, 2427.
dc.identifier.citedreferenceC. C. Norbury, Immunology 2006, 117, 443.
dc.identifier.citedreferenceS. H. van der Burg, R. Arens, F. Ossendorp, T. van Hall, C. J. M. Melief, Nat. Rev. Cancer 2016, 16, 219.
dc.identifier.citedreferencea) T. N. Schumacher, R. D. Schreiber, Science 2015, 348, 69; b) L. Scheetz, K. S. Park, Q. Li, P. R. Lowenstein, M. G. Castro, A. Schwendeman, J. J. Moon, Nat. Biomed. Eng. 2019, 3, 768.
dc.identifier.citedreferencea) S. Kreiter, M. Vormehr, N. van de Roemer, M. Diken, M. Löwer, J. Diekmann, S. Boegel, B. Schrörs, F. Vascotto, J. C. Castle, A. D. Tadmor, S. P. Schoenberger, C. Huber, Ö. Türeci, U. Sahin, Nature 2015, 520, 692; b) M. Yadav, S. Jhunjhunwala, Q. T. Phung, P. Lupardus, J. Tanguay, S. Bumbaca, C. Franci, T. K. Cheung, J. Fritsche, T. Weinschenk, Z. Modrusan, I. Mellman, J. R. Lill, L. Delamarre, Nature 2014, 515, 572.
dc.identifier.citedreferencea) P. A. Ott, Z. Hu, D. B. Keskin, S. A. Shukla, J. Sun, D. J. Bozym, W. Zhang, A. Luoma, A. Giobbie‐Hurder, L. Peter, C. Chen, O. Olive, T. A. Carter, S. Li, D. J. Lieb, T. Eisenhaure, E. Gjini, J. Stevens, W. J. Lane, I. Javeri, K. Nellaiappan, A. M. Salazar, H. Daley, M. Seaman, E. I. Buchbinder, C. H. Yoon, M. Harden, N. Lennon, S. Gabriel, S. J. Rodig, D. H. Barouch, J. C. Aster, G. Getz, K. Wucherpfennig, D. Neuberg, J. Ritz, E. S. Lander, E. F. Fritsch, N. Hacohen, C. J. Wu, Nature 2017, 547, 217; b) U. Sahin, E. Derhovanessian, M. Miller, B.‐P. Kloke, P. Simon, M. Löwer, V. Bukur, A. D. Tadmor, U. Luxemburger, B. Schrörs, T. Omokoko, M. Vormehr, C. Albrecht, A. Paruzynski, A. N. Kuhn, J. Buck, S. Heesch, K. H. Schreeb, F. Müller, I. Ortseifer, I. Vogler, E. Godehardt, S. Attig, R. Rae, A. Breitkreuz, C. Tolliver, M. Suchan, G. Martic, A. Hohberger, P. Sorn, J. Diekmann, J. Ciesla, O. Waksmann, A.‐K. Brück, M. Witt, M. Zillgen, A. Rothermel, B. Kasemann, D. Langer, S. Bolte, M. Diken, S. Kreiter, R. Nemecek, C. Gebhardt, S. Grabbe, C. Höller, J. Utikal, C. Huber, C. Loquai, Ö. Türeci, Nature 2017, 547, 222; c) N. Hilf, S. Kuttruff‐Coqui, K. Frenzel, V. Bukur, S. Stevanović, C. Gouttefangeas, M. Platten, G. Tabatabai, V. Dutoit, S. H. van der Burg, P. thor Straten, F. Martínez‐Ricarte, B. Ponsati, H. Okada, U. Lassen, A. Admon, C. H. Ottensmeier, A. Ulges, S. Kreiter, A. von Deimling, M. Skardelly, D. Migliorini, J. R. Kroep, M. Idorn, J. Rodon, J. Piró, H. S. Poulsen, B. Shraibman, K. McCann, R. Mendrzyk, M. Löwer, M. Stieglbauer, C. M. Britten, D. Capper, M. J. P. Welters, J. Sahuquillo, K. Kiesel, E. Derhovanessian, E. Rusch, L. Bunse, C. Song, S. Heesch, C. Wagner, A. Kemmer‐Brück, J. Ludwig, J. C. Castle, O. Schoor, A. D. Tadmor, E. Green, J. Fritsche, M. Meyer, N. Pawlowski, S. Dorner, F. Hoffgaard, B. Rössler, D. Maurer, T. Weinschenk, C. Reinhardt, C. Huber, H.‐G. Rammensee, H. Singh‐Jasuja, U. Sahin, P.‐Y. Dietrich, W. Wick, Nature 2019, 565, 240; d) D. B. Keskin, A. J. Anandappa, J. Sun, I. Tirosh, N. D. Mathewson, S. Li, G. Oliveira, A. Giobbie‐Hurder, K. Felt, E. Gjini, S. A. Shukla, Z. Hu, L. Li, P. M. Le, R. L. Allesøe, A. R. Richman, M. S. Kowalczyk, S. Abdelrahman, J. E. Geduldig, S. Charbonneau, K. Pelton, J. B. Iorgulescu, L. Elagina, W. Zhang, O. Olive, C. McCluskey, L. R. Olsen, J. Stevens, W. J. Lane, A. M. Salazar, H. Daley, P. Y. Wen, E. A. Chiocca, M. Harden, N. J. Lennon, S. Gabriel, G. Getz, E. S. Lander, A. Regev, J. Ritz, D. Neuberg, S. J. Rodig, K. L. Ligon, M. L. Suvà, K. W. Wucherpfennig, N. Hacohen, E. F. Fritsch, K. J. Livak, P. A. Ott, C. J. Wu, D. A. Reardon, Nature 2019, 565, 234.
dc.identifier.citedreferencea) H. Liu, K. D. Moynihan, Y. Zheng, G. L. Szeto, A. V. Li, B. Huang, D. S. Van Egeren, C. Park, D. J. Irvine, Nature 2014, 507, 519; b) G. Zhu, G. M. Lynn, O. Jacobson, K. Chen, Y. Liu, H. Zhang, Y. Ma, F. Zhang, R. Tian, Q. Ni, S. Cheng, Z. Wang, N. Lu, B. C. Yung, Z. Wang, L. Lang, X. Fu, A. Jin, I. D. Weiss, H. Vishwasrao, G. Niu, H. Shroff, D. M. Klinman, R. A. Seder, X. Chen, Nat. Commun. 2017, 8, 1954.
dc.identifier.citedreferenceJ. Nam, S. Son, K. S. Park, W. Zou, L. D. Shea, J. J. Moon, Nat. Rev. Mater. 2019, 4, 398.
dc.identifier.citedreferencea) G. M. Lynn, R. Laga, P. A. Darrah, A. S. Ishizuka, A. J. Balaci, A. E. Dulcey, M. Pechar, R. Pola, M. Y. Gerner, A. Yamamoto, C. R. Buechler, K. M. Quinn, M. G. Smelkinson, O. Vanek, R. Cawood, T. Hills, O. Vasalatiy, K. Kastenmüller, J. R. Francica, L. Stutts, J. K. Tom, K. A. Ryu, A. P. Esser‐Kahn, T. Etrych, K. D. Fisher, L. W. Seymour, R. A. Seder, Nat. Biotechnol. 2015, 33, 1201; b) A. de Titta, M. Ballester, Z. Julier, C. Nembrini, L. Jeanbart, A. J. van der Vlies, M. A. Swartz, J. A. Hubbell, Proc. Natl. Acad. Sci. USA 2013, 110, 19902; c) J. J. Moon, H. Suh, A. Bershteyn, M. T. Stephan, H. Liu, B. Huang, M. Sohail, S. Luo, S. H. Um, H. Khant, J. T. Goodwin, J. Ramos, W. Chiu, D. J. Irvine, Nat. Mater. 2011, 10, 243.
dc.identifier.citedreferencea) T. Kawai, S. Akira, Immunity 2011, 34, 637; b) L. A. J. O’Neill, D. Golenbock, A. G. Bowie, Nat. Rev. Immunol. 2013, 13, 453.
dc.working.doiNOen
dc.owningcollnameInterdisciplinary and Peer-Reviewed


Files in this item

Show simple item record

Remediation of Harmful Language

The University of Michigan Library aims to describe library materials in a way that respects the people and communities who create, use, and are represented in our collections. Report harmful or offensive language in catalog records, finding aids, or elsewhere in our collections anonymously through our metadata feedback form. More information at Remediation of Harmful Language.

Accessibility

If you are unable to use this file in its current format, please select the Contact Us link and we can modify it to make it more accessible to you.