Cargando…

MiR-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes

BACKGROUND: Type 2 diabetes (T2D) is associated with coronary microvascular dysfunction, which is thought to contribute to compromised diastolic function, ultimately culminating in heart failure with preserved ejection fraction (HFpEF). The molecular mechanisms remain incompletely understood, and no...

Descripción completa

Detalles Bibliográficos
Autores principales: Veitch, Shawn, Njock, Makon-Sébastien, Chandy, Mark, Siraj, M. Ahsan, Chi, Lijun, Mak, HaoQi, Yu, Kai, Rathnakumar, Kumaragurubaran, Perez-Romero, Carmina Anjelica, Chen, Zhiqi, Alibhai, Faisal J., Gustafson, Dakota, Raju, Sneha, Wu, Ruilin, Zarrin Khat, Dorrin, Wang, Yaxu, Caballero, Amalia, Meagher, Patrick, Lau, Edward, Pepic, Lejla, Cheng, Henry S., Galant, Natalie J., Howe, Kathryn L., Li, Ren-Ke, Connelly, Kim A., Husain, Mansoor, Delgado-Olguin, Paul, Fish, Jason E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8876371/
https://www.ncbi.nlm.nih.gov/pubmed/35209901
http://dx.doi.org/10.1186/s12933-022-01458-z
_version_ 1784658155111710720
author Veitch, Shawn
Njock, Makon-Sébastien
Chandy, Mark
Siraj, M. Ahsan
Chi, Lijun
Mak, HaoQi
Yu, Kai
Rathnakumar, Kumaragurubaran
Perez-Romero, Carmina Anjelica
Chen, Zhiqi
Alibhai, Faisal J.
Gustafson, Dakota
Raju, Sneha
Wu, Ruilin
Zarrin Khat, Dorrin
Wang, Yaxu
Caballero, Amalia
Meagher, Patrick
Lau, Edward
Pepic, Lejla
Cheng, Henry S.
Galant, Natalie J.
Howe, Kathryn L.
Li, Ren-Ke
Connelly, Kim A.
Husain, Mansoor
Delgado-Olguin, Paul
Fish, Jason E.
author_facet Veitch, Shawn
Njock, Makon-Sébastien
Chandy, Mark
Siraj, M. Ahsan
Chi, Lijun
Mak, HaoQi
Yu, Kai
Rathnakumar, Kumaragurubaran
Perez-Romero, Carmina Anjelica
Chen, Zhiqi
Alibhai, Faisal J.
Gustafson, Dakota
Raju, Sneha
Wu, Ruilin
Zarrin Khat, Dorrin
Wang, Yaxu
Caballero, Amalia
Meagher, Patrick
Lau, Edward
Pepic, Lejla
Cheng, Henry S.
Galant, Natalie J.
Howe, Kathryn L.
Li, Ren-Ke
Connelly, Kim A.
Husain, Mansoor
Delgado-Olguin, Paul
Fish, Jason E.
author_sort Veitch, Shawn
collection PubMed
description BACKGROUND: Type 2 diabetes (T2D) is associated with coronary microvascular dysfunction, which is thought to contribute to compromised diastolic function, ultimately culminating in heart failure with preserved ejection fraction (HFpEF). The molecular mechanisms remain incompletely understood, and no early diagnostics are available. We sought to gain insight into biomarkers and potential mechanisms of microvascular dysfunction in obese mouse (db/db) and lean rat (Goto-Kakizaki) pre-clinical models of T2D-associated diastolic dysfunction. METHODS: The microRNA (miRNA) content of circulating extracellular vesicles (EVs) was assessed in T2D models to identify biomarkers of coronary microvascular dysfunction/rarefaction. The potential source of circulating EV-encapsulated miRNAs was determined, and the mechanisms of induction and the function of candidate miRNAs were assessed in endothelial cells (ECs). RESULTS: We found an increase in miR-30d-5p and miR-30e-5p in circulating EVs that coincided with indices of coronary microvascular EC dysfunction (i.e., markers of oxidative stress, DNA damage/senescence) and rarefaction, and preceded echocardiographic evidence of diastolic dysfunction. These miRNAs may serve as biomarkers of coronary microvascular dysfunction as they are upregulated in ECs of the left ventricle of the heart, but not other organs, in db/db mice. Furthermore, the miR-30 family is secreted in EVs from senescent ECs in culture, and ECs with senescent-like characteristics are present in the db/db heart. Assessment of miR-30 target pathways revealed a network of genes involved in fatty acid biosynthesis and metabolism. Over-expression of miR-30e in cultured ECs increased fatty acid β-oxidation and the production of reactive oxygen species and lipid peroxidation, while inhibiting the miR-30 family decreased fatty acid β-oxidation. Additionally, miR-30e over-expression synergized with fatty acid exposure to down-regulate the expression of eNOS, a key regulator of microvascular and cardiomyocyte function. Finally, knock-down of the miR-30 family in db/db mice decreased markers of oxidative stress and DNA damage/senescence in the microvascular endothelium. CONCLUSIONS: MiR-30d/e represent early biomarkers and potential therapeutic targets that are indicative of the development of diastolic dysfunction and may reflect altered EC fatty acid metabolism and microvascular dysfunction in the diabetic heart. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1186/s12933-022-01458-z.
format Online
Article
Text
id pubmed-8876371
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-88763712022-02-28 MiR-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes Veitch, Shawn Njock, Makon-Sébastien Chandy, Mark Siraj, M. Ahsan Chi, Lijun Mak, HaoQi Yu, Kai Rathnakumar, Kumaragurubaran Perez-Romero, Carmina Anjelica Chen, Zhiqi Alibhai, Faisal J. Gustafson, Dakota Raju, Sneha Wu, Ruilin Zarrin Khat, Dorrin Wang, Yaxu Caballero, Amalia Meagher, Patrick Lau, Edward Pepic, Lejla Cheng, Henry S. Galant, Natalie J. Howe, Kathryn L. Li, Ren-Ke Connelly, Kim A. Husain, Mansoor Delgado-Olguin, Paul Fish, Jason E. Cardiovasc Diabetol Original Investigation BACKGROUND: Type 2 diabetes (T2D) is associated with coronary microvascular dysfunction, which is thought to contribute to compromised diastolic function, ultimately culminating in heart failure with preserved ejection fraction (HFpEF). The molecular mechanisms remain incompletely understood, and no early diagnostics are available. We sought to gain insight into biomarkers and potential mechanisms of microvascular dysfunction in obese mouse (db/db) and lean rat (Goto-Kakizaki) pre-clinical models of T2D-associated diastolic dysfunction. METHODS: The microRNA (miRNA) content of circulating extracellular vesicles (EVs) was assessed in T2D models to identify biomarkers of coronary microvascular dysfunction/rarefaction. The potential source of circulating EV-encapsulated miRNAs was determined, and the mechanisms of induction and the function of candidate miRNAs were assessed in endothelial cells (ECs). RESULTS: We found an increase in miR-30d-5p and miR-30e-5p in circulating EVs that coincided with indices of coronary microvascular EC dysfunction (i.e., markers of oxidative stress, DNA damage/senescence) and rarefaction, and preceded echocardiographic evidence of diastolic dysfunction. These miRNAs may serve as biomarkers of coronary microvascular dysfunction as they are upregulated in ECs of the left ventricle of the heart, but not other organs, in db/db mice. Furthermore, the miR-30 family is secreted in EVs from senescent ECs in culture, and ECs with senescent-like characteristics are present in the db/db heart. Assessment of miR-30 target pathways revealed a network of genes involved in fatty acid biosynthesis and metabolism. Over-expression of miR-30e in cultured ECs increased fatty acid β-oxidation and the production of reactive oxygen species and lipid peroxidation, while inhibiting the miR-30 family decreased fatty acid β-oxidation. Additionally, miR-30e over-expression synergized with fatty acid exposure to down-regulate the expression of eNOS, a key regulator of microvascular and cardiomyocyte function. Finally, knock-down of the miR-30 family in db/db mice decreased markers of oxidative stress and DNA damage/senescence in the microvascular endothelium. CONCLUSIONS: MiR-30d/e represent early biomarkers and potential therapeutic targets that are indicative of the development of diastolic dysfunction and may reflect altered EC fatty acid metabolism and microvascular dysfunction in the diabetic heart. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1186/s12933-022-01458-z. BioMed Central 2022-02-24 /pmc/articles/PMC8876371/ /pubmed/35209901 http://dx.doi.org/10.1186/s12933-022-01458-z Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) . The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/ (https://creativecommons.org/publicdomain/zero/1.0/) ) applies to the data made available in this article, unless otherwise stated in a credit line to the data.
spellingShingle Original Investigation
Veitch, Shawn
Njock, Makon-Sébastien
Chandy, Mark
Siraj, M. Ahsan
Chi, Lijun
Mak, HaoQi
Yu, Kai
Rathnakumar, Kumaragurubaran
Perez-Romero, Carmina Anjelica
Chen, Zhiqi
Alibhai, Faisal J.
Gustafson, Dakota
Raju, Sneha
Wu, Ruilin
Zarrin Khat, Dorrin
Wang, Yaxu
Caballero, Amalia
Meagher, Patrick
Lau, Edward
Pepic, Lejla
Cheng, Henry S.
Galant, Natalie J.
Howe, Kathryn L.
Li, Ren-Ke
Connelly, Kim A.
Husain, Mansoor
Delgado-Olguin, Paul
Fish, Jason E.
MiR-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes
title MiR-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes
title_full MiR-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes
title_fullStr MiR-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes
title_full_unstemmed MiR-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes
title_short MiR-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes
title_sort mir-30 promotes fatty acid beta-oxidation and endothelial cell dysfunction and is a circulating biomarker of coronary microvascular dysfunction in pre-clinical models of diabetes
topic Original Investigation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8876371/
https://www.ncbi.nlm.nih.gov/pubmed/35209901
http://dx.doi.org/10.1186/s12933-022-01458-z
work_keys_str_mv AT veitchshawn mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT njockmakonsebastien mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT chandymark mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT sirajmahsan mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT chilijun mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT makhaoqi mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT yukai mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT rathnakumarkumaragurubaran mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT perezromerocarminaanjelica mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT chenzhiqi mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT alibhaifaisalj mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT gustafsondakota mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT rajusneha mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT wuruilin mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT zarrinkhatdorrin mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT wangyaxu mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT caballeroamalia mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT meagherpatrick mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT lauedward mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT pepiclejla mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT chenghenrys mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT galantnataliej mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT howekathrynl mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT lirenke mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT connellykima mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT husainmansoor mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT delgadoolguinpaul mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes
AT fishjasone mir30promotesfattyacidbetaoxidationandendothelialcelldysfunctionandisacirculatingbiomarkerofcoronarymicrovasculardysfunctioninpreclinicalmodelsofdiabetes