Muscle Stem Cells Reprogrammed Through Genome Engineering for Autonomously Regulated Anti-Fibrotic Therapy
Muscle Stem Cells Reprogrammed Through Genome Engineering for Autonomously Regulated Anti-Fibrotic Therapy
批准号:
9917939
负责人:
Farshid Guilak
金额:
$20.42万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-04-30 至 2021-01-31
关键词:
BiologicalCRISPR/Cas technologyCell Differentiation processCellsCicatrixContusionsCustomDepositionDevelopmentDoseEventExtracellular MatrixFDA approvedFeedbackFibrosisGenesGenome engineeringGoalsHeartImmuneIn VitroInflammationInflammatoryInjuryInterferon Type IIInterleukin-1Interleukin-1 alphaKidneyLiverLosartanLungMediatingMusMuscleMuscle satellite cellMusculoskeletalMyofibroblastMyopathyNatural regenerationOrganPathway interactionsPharmaceutical PreparationsPharmacologyPlayPrincipal InvestigatorProcessRegenerative MedicineRelaxinReportingResearchSignal PathwaySkeletal MuscleSourceSports MedicineStem cell transplantStem cellsSuraminSystemTNF geneTestingTissuesTransforming Growth Factor betaTransforming Growth FactorsTraumatic injuryarticular cartilageautocrinebasecombinatorialcytokinedecorindesigneffective therapygenome editinghealingimprovedin vivoinhibitor/antagonistinjuredinnovationmouse modelmuscle engineeringmuscle regenerationmuscle transplantationnovelnucleasepreventpromoterreceptorregenerativerehabilitation strategyrepairedresponseside effectstem cell differentiationstem cell populationstem cell therapytargeted nucleasestissue repairtransgene expression
中文摘要
我们前期研究表明,转化生长因子(TGF)-β1在骨骼肌中起关键作用
英文摘要
Our previous studies indicated that transforming growth factor (TGF)-β1 plays a key role in skeletal muscle
fibrosis after injury. Antifibrotic agents that inactivate TGF-β1 can reduce muscle fibrosis and significantly improve
muscle regeneration and repair. Furthermore, we have also demonstrated that the transplantation of muscle-
derived stem cell (MDSCs) could improve muscle regeneration after injury, but the differentiation of the injected
cells into fibrotic cells limits the beneficial effect on muscle repair. In fact, we have observed that MDSCs under
the influence of TGF-β1 from the injured muscle microenvironment, not only induce an autocrine expression of
TGF-β1 but also promote the MDSCs’ differentiation into myofibroblasts that contribute to the development of
fibrosis. We have recently reported that combining losartan (anti-fibrotic agent) with MDSC transplantation
significantly improved the regenerative potential of MDSCs in skeletal muscle by preventing the MDSC’s
differentiation into fibrosis. Although the systemic use of losartan is safe and FDA-approved, it likely leads to
widespread blockade of TGF-β1 which might not be desirable. In addition, pharmacological anti-fibrotic therapies
are often effective at diminishing fibrosis, but are used at high, unregulated doses and have significant side
effects. More recently, using the CRISPR/Cas9 genome editing system, our co-Principal Investigator (Dr. Guilak)
created stem cells that can antagonize IL-1α or TNF-α-mediated inflammation in an auto-regulated, feedback-
controlled manner for musculoskeletal regenerative medicine applications. They have demonstrated proof-of-
concept of the ability to custom-design stem cells that are immune to pro-inflammatory cytokines as a potential
cell source for optimal tissue repair. We therefore propose that this novel genome engineering system can also
be used to antagonize TGF-β1-mediated fibrosis and further improve muscle healing after injury. We propose to
target the TGF-β soluble receptor type II (TSRTII), to antagonize TGF-β1-mediated fibrosis in the application.
We are proposing to develop an autoregulatory gene circuit in MDSCs, such that the TGF-β1 gene will be
reprogrammed by nuclease-mediated integration of the TSRTII, a TGF-β1 antagonist, immediately downstream
of the TGF-β1 signaling pathway. Transgene expression from the endogenous TGF-β1 locus in engineered
MDSCs will provide rapid feedback-control to produce TSRTII in response to TGF-β1. We will first test whether
the gene-edited MDSCs show the ability to mitigate the fibrotic effects of TGF-β1 in vitro, by examining the
differentiation of MDSCs into myofibroblasts and the expression of TSRTII and genes involved in the TGF-β1
pathway. Next, we propose to determine whether muscle regeneration & repair with control MDSCs show
significant fibrotic events in response to TGF-β1, whereas muscle repair with genome-edited MDSCs will be
protected from fibrosis after injury in vivo.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
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海外基金