Glycosylated Chromogranin A in Heart Failure: Implications for Processing and Cardiomyocyte Calcium Homeostasis

Anett Hellebø Ottesen1, Cathrine R Carlson1, William E Louch1

  • 1From the Division of Medicine, Akershus University Hospital, Lørenskog, Norway and Center for Heart Failure Research, University of Oslo, Norway (A.H.O., M.B.D., R.A.S., A.D.H., J.B., T.O., H.R.); Institute for Experimental Medical Research, Oslo University Hospital and Center for Heart Failure Research, University of Oslo, Norway (A.H.O., C.R.C., W.E.L., R.A.S., H.J., I.S., G.C.); Department of Clinical Molecular Biology, Akershus University Hospital, Lørenskog, Norway and Institute for Clinical Medicine, University of Oslo, Norway (M.B.D., R.A.S.); Department of Microbiology, Oslo University Hospital, Rikshospitalet, Norway, and University of Oslo, Norway (R.F.J., M.B.); Department of Medical Sciences, Uppsala University, Sweden (M.S.).

Circulation. Heart Failure
|February 18, 2017
PubMed

Insights

Chromogranin A (CgA) processing is impaired in heart failure (HF), leading to reduced catestatin (CST) and increased mortality. Impaired CgA-to-CST conversion affects cardiomyocyte function via CaMKIIδ dysregulation.

Area of Science:

  • Cardiovascular Research
  • Biochemistry
  • Molecular Biology

Background:

  • Chromogranin A (CgA) levels predict mortality in heart failure (HF).
  • CgA processing in HF and the role of its fragment catestatin (CST) in cardiomyocyte function remain unclear.

Purpose of the Study:

  • To investigate CgA processing in HF.
  • To explore the functional role of CST in cardiomyocyte function and its association with HF outcomes.

Main Methods:

  • Characterized CgA processing in mouse models of postinfarction HF and human acute HF patients.
  • Assessed CST's effect on CaMKIIδ activity and cardiomyocyte calcium handling.
  • Correlated CgA levels and CgA-to-CST conversion with mortality in acute HF.

Main Results:

  • HF hearts showed high molecular weight CgA bands, indicating altered processing, potentially due to hyperglycosylation.
  • Reduced CgA-to-CST conversion correlated with increased mortality in acute HF.
  • CST directly inhibited CaMKIIδ, impacting cardiomyocyte calcium handling, contractility, and potentially contributing to HF pathophysiology.

Conclusions:

  • Impaired CgA-to-CST conversion, linked to hyperglycosylation, is associated with adverse clinical outcomes in acute HF.
  • Dysregulated cardiomyocyte calcium handling due to reduced CaMKIIδ inhibition by CST may underlie increased mortality in HF.
Abstract

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