microRNA-21-5p dysregulation in exosomes derived from heart failure patients impairs regenerative potential.

dc.contributor.author

Qiao, Li

dc.contributor.author

Hu, Shiqi

dc.contributor.author

Liu, Suyun

dc.contributor.author

Zhang, Hui

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Ma, Hong

dc.contributor.author

Huang, Ke

dc.contributor.author

Li, Zhenhua

dc.contributor.author

Su, Teng

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Vandergriff, Adam

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Tang, Junnan

dc.contributor.author

Allen, Tyler

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Dinh, Phuong-Uyen

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Cores, Jhon

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Yin, Qi

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Li, Yongjun

dc.contributor.author

Cheng, Ke

dc.date.accessioned

2022-12-04T16:38:29Z

dc.date.available

2022-12-04T16:38:29Z

dc.date.issued

2019-04

dc.date.updated

2022-12-04T16:37:52Z

dc.description.abstract

Exosomes, as functional paracrine units of therapeutic cells, can partially reproduce the reparative properties of their parental cells. The constitution of exosomes, as well as their biological activity, largely depends on the cells that secrete them. We isolated exosomes from explant-derived cardiac stromal cells from patients with heart failure (FEXO) or from normal donor hearts (NEXO) and compared their regenerative activities in vitro and in vivo. Patients in the FEXO group exhibited an impaired ability to promote endothelial tube formation and cardiomyocyte proliferation in vitro. Intramyocardial injection of NEXO resulted in structural and functional improvements in a murine model of acute myocardial infarction. In contrast, FEXO therapy exacerbated cardiac function and left ventricular remodeling. microRNA array and PCR analysis revealed dysregulation of miR-21-5p in FEXO. Restoring miR-21-5p expression rescued FEXO's reparative function, whereas blunting miR-21-5p expression in NEXO diminished its therapeutic benefits. Further mechanistic studies revealed that miR-21-5p augmented Akt kinase activity through the inhibition of phosphatase and tensin homolog. Taken together, the heart failure pathological condition altered the miR cargos of cardiac-derived exosomes and impaired their regenerative activities. miR-21-5p contributes to exosome-mediated heart repair by enhancing angiogenesis and cardiomyocyte survival through the phosphatase and tensin homolog/Akt pathway.

dc.identifier

123135

dc.identifier.issn

0021-9738

dc.identifier.issn

1558-8238

dc.identifier.uri

https://hdl.handle.net/10161/26321

dc.language

eng

dc.publisher

American Society for Clinical Investigation

dc.relation.ispartof

The Journal of clinical investigation

dc.relation.isversionof

10.1172/jci123135

dc.subject

Myocardium

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Heart

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Stromal Cells

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Myocytes, Cardiac

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Animals

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Humans

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Mice

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MicroRNAs

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Regeneration

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Signal Transduction

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Neovascularization, Physiologic

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Female

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Male

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Proto-Oncogene Proteins c-akt

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Heart Failure

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Exosomes

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Human Umbilical Vein Endothelial Cells

dc.title

microRNA-21-5p dysregulation in exosomes derived from heart failure patients impairs regenerative potential.

dc.type

Journal article

duke.contributor.orcid

Su, Teng|0000-0001-7888-0763

duke.contributor.orcid

Allen, Tyler|0000-0002-8729-6339

pubs.begin-page

2237

pubs.end-page

2250

pubs.issue

6

pubs.organisational-group

Duke

pubs.organisational-group

School of Medicine

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Clinical Science Departments

pubs.organisational-group

Medicine

pubs.organisational-group

Medicine, Cardiology

pubs.publication-status

Published

pubs.volume

129

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