Mesenchymal Stem Cells Pretreated with Delivered Hph-1-Hsp70 Protein Are Protected from Hypoxia-Mediated Cell Death and Rescue Heart Functions from Myocardial Injury

Author:

Chang Woochul1,Song Byeong-Wook23,Lim Soyeon4,Song Heesang5,Shim Chi Young6,Cha Min-Ji23,Ahn Dong Hyuck7,Jung Young-Gook7,Lee Dong-Ho8,Chung Ji Hyung9,Choi Ki-Doo8,Lee Seung-Kyou8,Chung Namsik26,Lee Sang-Kyou7,Jang Yangsoo26,Hwang Ki-Chul2

Affiliation:

1. Department of Pharmacology, Yale University School of Medicine, New Haven, Connecticut, USA

2. Cardiovascular Research Institute, Yonsei University College of Medicine, Seoul, Republic of Korea

3. Brain Korea 21 Project for Medical Science, Yonsei University College of Medicine, Seoul, Republic of Korea

4. Cardiovascular Research Institute, University of Rochester School of Medicine and Dentistry, Rochester, New York, USA

5. Department of Pediatrics, Washington University in St. Louis School of Medicine, St. Louis, Missouri, USA

6. Cardiology Division, Yonsei University College of Medicine, Seoul, Republic of Korea

7. Department of Biotechnology, College of Life Science and Biotechnology, Yonsei University, Seoul, Republic of Korea

8. ForHumanTech Co., Ltd, Hwa-Sung, Republic of Korea

9. Severance Hospital Integration, Research Institute for Cerebral & Cardiovascular Diseases, Severance Hospital, 250 Seongsanno, Seodaemun-gu, Seoul, Republic of Korea

Abstract

Abstract Mesenchymal stem cell (MSC) therapy for myocardial injury has inherent limitations due to the poor viability of MSCs after cell transplantation. In this study, we directly delivered Hsp70, a protein with protective functions against stress, into MSCs, using the Hph-1 protein transduction domain ex vivo for high transfection efficiency and low cytotoxicity. Compared to control MSCs in in vitro hypoxic conditions, MSCs delivered with Hph-1-Hsp70 (Hph-1-Hsp70-MSCs) displayed higher viability and anti-apoptotic properties, including Bcl2 increase, reduction of Bax, JNK phosphorylation and caspase-3 activity. Hsp70 delivery also attenuated cellular ATP-depleting stress. Eight animals per group were used for in vivo experiments after occlusion of the left coronary artery. Transplantation of Hph-1-Hsp70-MSCs led to a decrease in the fibrotic heart area, and significantly reduced the apoptotic positive index by 19.5 ± 2%, compared to no-treatment controls. Hph-1-Hsp70-MSCs were well-integrated into the infarcted host myocardium. The mean microvessel count per field in the infarcted myocardium of the Hph-1-Hsp70-MSC-treated group (122.1 ± 13.5) increased relative to the MSC-treated group (75.9 ± 10.4). By echocardiography, transplantation of Hph-1-Hsp70-MSCs resulted in additional increases in heart function, compared to the MSCs-transplanted group. Our results may help formulate better clinical strategies for in vivo MSC cell therapy for myocardial damage. Disclosure of potential conflicts of interest is found at the end of this article.

Funder

Korea Science and Engineering Foundation (KOSEF) Grant funded by MOST

Stem Cell Research Center of 2first Century Frontier Research Program funded by the Ministry of Education, Science and Technology, Republic of Korea and by the Korea Science

Korea Health 21 R&D Project, Ministry of Health & Welfare, Republic of Korea

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,Molecular Medicine

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