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Mutation of the 5'-untranslated region stem-loop mRNA structure reduces type I collagen deposition and arterial stiffness in male obese mice.
Ramirez-Perez, Francisco I; Woodford, Makenzie L; Morales-Quinones, Mariana; Grunewald, Zachary I; Cabral-Amador, Francisco J; Yoshida, Tadashi; Brenner, David A; Manrique-Acevedo, Camila; Martinez-Lemus, Luis A; Chandrasekar, Bysani; Padilla, Jaume.
Affiliation
  • Ramirez-Perez FI; Dalton Cardiovascular Research Center, University of Missouri, Columbia, Missouri.
  • Woodford ML; Department of Biomedical, Biological and Chemical Engineering, University of Missouri, Columbia, Missouri.
  • Morales-Quinones M; Dalton Cardiovascular Research Center, University of Missouri, Columbia, Missouri.
  • Grunewald ZI; Department of Nutrition and Exercise Physiology, University of Missouri, Columbia, Missouri.
  • Cabral-Amador FJ; Dalton Cardiovascular Research Center, University of Missouri, Columbia, Missouri.
  • Yoshida T; Dalton Cardiovascular Research Center, University of Missouri, Columbia, Missouri.
  • Brenner DA; Department of Nutrition and Exercise Physiology, University of Missouri, Columbia, Missouri.
  • Manrique-Acevedo C; Dalton Cardiovascular Research Center, University of Missouri, Columbia, Missouri.
  • Martinez-Lemus LA; Department of Medicine, Tulane University School of Medicine, New Orleans, Louisiana.
  • Chandrasekar B; School of Medicine, University of California-San Diego, La Jolla, California.
  • Padilla J; Dalton Cardiovascular Research Center, University of Missouri, Columbia, Missouri.
Am J Physiol Heart Circ Physiol ; 321(2): H435-H445, 2021 08 01.
Article in En | MEDLINE | ID: mdl-34242094
Arterial stiffening, a characteristic feature of obesity and type 2 diabetes, contributes to the development and progression of cardiovascular diseases (CVD). Currently, no effective prophylaxis or therapeutics is available to prevent or treat arterial stiffening. A better understanding of the molecular mechanisms underlying arterial stiffening is vital to identify newer targets and strategies to reduce CVD burden. A major contributor to arterial stiffening is increased collagen deposition. In the 5'-untranslated regions of mRNAs encoding for type I collagen, an evolutionally conserved stem-loop (SL) structure plays an essential role in its stability and post-transcriptional regulation. Here, we show that feeding a high-fat/high-sucrose (HFHS) diet for 28 wk increases adiposity, insulin resistance, and blood pressure in male wild-type littermates. Moreover, arterial stiffness, assessed in vivo via aortic pulse wave velocity, and ex vivo using atomic force microscopy in aortic explants or pressure myography in isolated femoral and mesenteric arteries, was also increased in those mice. Notably, all these indices of arterial stiffness, along with collagen type I levels in the vasculature, were reduced in HFHS-fed mice harboring a mutation in the 5'SL structure, relative to wild-type littermates. This protective vascular phenotype in 5'SL-mutant mice did not associate with a reduction in insulin resistance or blood pressure. These findings implicate the 5'SL structure as a putative therapeutic target to prevent or reverse arterial stiffening and CVD associated with obesity and type 2 diabetes.NEW & NOTEWORTHY In the 5'-untranslated (UTR) regions of mRNAs encoding for type I collagen, an evolutionally conserved SL structure plays an essential role in its stability and posttranscriptional regulation. We demonstrate that a mutation of the SL mRNA structure in the 5'-UTR decreases collagen type I deposition and arterial stiffness in obese mice. Targeting this evolutionarily conserved SL structure may hold promise in the management of arterial stiffening and CVD associated with obesity and type 2 diabetes.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Aorta / RNA, Messenger / Cardiovascular Diseases / Collagen Type I / Inverted Repeat Sequences / Vascular Stiffness / Obesity Type of study: Prognostic_studies Limits: Animals Language: En Journal: Am J Physiol Heart Circ Physiol Journal subject: CARDIOLOGIA / FISIOLOGIA Year: 2021 Type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Aorta / RNA, Messenger / Cardiovascular Diseases / Collagen Type I / Inverted Repeat Sequences / Vascular Stiffness / Obesity Type of study: Prognostic_studies Limits: Animals Language: En Journal: Am J Physiol Heart Circ Physiol Journal subject: CARDIOLOGIA / FISIOLOGIA Year: 2021 Type: Article