Myung Chul Lee, Yasamin A Jodat, Yori Endo, Alejandra Rodríguez-delaRosa, Ting Zhang, Mehran Karvar, Ziad Al Tanoury, Jacob Quint, Tom Kamperman, Kiavash Kiaee, Sofia Lara Ochoa, Kun Shi, Yike Huang, Montserrat Pineda Rosales, Adnan Arnaout, Hyeseon Lee, Jiseong Kim, Eder Luna Ceron, Isaac Garcia Reyes, Adriana C Panayi, Angel Flores Huidobro Martinez, Xichi Wang, Ki-Tae Kim, Jae-I Moon, Seung Gwa Park, Kangju Lee, Michelle A Calabrese, Shabir Hassan, Junmin Lee, Ali Tamayol, Luke Lee, Olivier Pourquié, Woo-Jin Kim, Indranil Sinha, Su Ryon Shin
{"title":"设计大规模的 hiPSC 衍生血管整合肌肉样晶格,以增强肌肉再生的体积。","authors":"Myung Chul Lee, Yasamin A Jodat, Yori Endo, Alejandra Rodríguez-delaRosa, Ting Zhang, Mehran Karvar, Ziad Al Tanoury, Jacob Quint, Tom Kamperman, Kiavash Kiaee, Sofia Lara Ochoa, Kun Shi, Yike Huang, Montserrat Pineda Rosales, Adnan Arnaout, Hyeseon Lee, Jiseong Kim, Eder Luna Ceron, Isaac Garcia Reyes, Adriana C Panayi, Angel Flores Huidobro Martinez, Xichi Wang, Ki-Tae Kim, Jae-I Moon, Seung Gwa Park, Kangju Lee, Michelle A Calabrese, Shabir Hassan, Junmin Lee, Ali Tamayol, Luke Lee, Olivier Pourquié, Woo-Jin Kim, Indranil Sinha, Su Ryon Shin","doi":"10.1016/j.tibtech.2024.08.001","DOIUrl":null,"url":null,"abstract":"<p><p>Engineering biomimetic tissue implants with human induced pluripotent stem cells (hiPSCs) holds promise for repairing volumetric tissue loss. However, these implants face challenges in regenerative capability, survival, and geometric scalability at large-scale injury sites. Here, we present scalable vessel-integrated muscle-like lattices (VMLs), containing dense and aligned hiPSC-derived myofibers alongside passively perfusable vessel-like microchannels inside an endomysium-like supporting matrix using an embedded multimaterial bioprinting technology. The contractile and millimeter-long myofibers are created in mechanically tailored and nanofibrous extracellular matrix-based hydrogels. Incorporating vessel-like lattice enhances myofiber maturation in vitro and guides host vessel invasion in vivo, improving implant integration. Consequently, we demonstrate successful de novo muscle formation and muscle function restoration through a combinatorial effect between improved graft-host integration and its increased release of paracrine factors within volumetric muscle loss injury models. The proposed modular bioprinting technology enables scaling up to centimeter-sized prevascularized hiPSC-derived muscle tissues with custom geometries for next-generation muscle regenerative therapies.</p>","PeriodicalId":23324,"journal":{"name":"Trends in biotechnology","volume":null,"pages":null},"PeriodicalIF":14.3000,"publicationDate":"2024-09-20","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Engineering large-scale hiPSC-derived vessel-integrated muscle-like lattices for enhanced volumetric muscle regeneration.\",\"authors\":\"Myung Chul Lee, Yasamin A Jodat, Yori Endo, Alejandra Rodríguez-delaRosa, Ting Zhang, Mehran Karvar, Ziad Al Tanoury, Jacob Quint, Tom Kamperman, Kiavash Kiaee, Sofia Lara Ochoa, Kun Shi, Yike Huang, Montserrat Pineda Rosales, Adnan Arnaout, Hyeseon Lee, Jiseong Kim, Eder Luna Ceron, Isaac Garcia Reyes, Adriana C Panayi, Angel Flores Huidobro Martinez, Xichi Wang, Ki-Tae Kim, Jae-I Moon, Seung Gwa Park, Kangju Lee, Michelle A Calabrese, Shabir Hassan, Junmin Lee, Ali Tamayol, Luke Lee, Olivier Pourquié, Woo-Jin Kim, Indranil Sinha, Su Ryon Shin\",\"doi\":\"10.1016/j.tibtech.2024.08.001\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Engineering biomimetic tissue implants with human induced pluripotent stem cells (hiPSCs) holds promise for repairing volumetric tissue loss. 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Engineering biomimetic tissue implants with human induced pluripotent stem cells (hiPSCs) holds promise for repairing volumetric tissue loss. However, these implants face challenges in regenerative capability, survival, and geometric scalability at large-scale injury sites. Here, we present scalable vessel-integrated muscle-like lattices (VMLs), containing dense and aligned hiPSC-derived myofibers alongside passively perfusable vessel-like microchannels inside an endomysium-like supporting matrix using an embedded multimaterial bioprinting technology. The contractile and millimeter-long myofibers are created in mechanically tailored and nanofibrous extracellular matrix-based hydrogels. Incorporating vessel-like lattice enhances myofiber maturation in vitro and guides host vessel invasion in vivo, improving implant integration. Consequently, we demonstrate successful de novo muscle formation and muscle function restoration through a combinatorial effect between improved graft-host integration and its increased release of paracrine factors within volumetric muscle loss injury models. The proposed modular bioprinting technology enables scaling up to centimeter-sized prevascularized hiPSC-derived muscle tissues with custom geometries for next-generation muscle regenerative therapies.
期刊介绍:
Trends in Biotechnology publishes reviews and perspectives on the applied biological sciences, focusing on useful science applied to, derived from, or inspired by living systems.
The major themes that TIBTECH is interested in include:
Bioprocessing (biochemical engineering, applied enzymology, industrial biotechnology, biofuels, metabolic engineering)
Omics (genome editing, single-cell technologies, bioinformatics, synthetic biology)
Materials and devices (bionanotechnology, biomaterials, diagnostics/imaging/detection, soft robotics, biosensors/bioelectronics)
Therapeutics (biofabrication, stem cells, tissue engineering and regenerative medicine, antibodies and other protein drugs, drug delivery)
Agroenvironment (environmental engineering, bioremediation, genetically modified crops, sustainable development).