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Genetic or therapeutic neutralization of ALK1 reduces LDL transcytosis and atherosclerosis in mice

  • Xue Xiao
    ,
  • Lin Xu
    ,
  • Junhui Zhang
    ,
  • Xiaoyue Hu
    ,
  • Evanthia Pashos
    ,
  • George Tellides
  • University of Texas Southwestern Medical Center
    ,
  • Yale University
    ,
  • Internal Medicine Research, Unit Pfizer Inc
    ,
  • University of Toronto
    ,
  • Genovac Antibody Discovery, Fargo, ND, USA
Research Output:
Contribution to journal
Article
Peer-review

Open access

Publication metrics

Metrics

SciVal
FWCI
3.43
SciVal
Author count
22
SciVal
Paper percentile
94
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Citations
34
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Top percentile
10
Scopus
Citations

Abstract

Low-density lipoprotein (LDL) accumulation in the arterial wall contributes to atherosclerosis initiation and progression 1 . Activin A receptor-like type 1 (ACVRL1, called activin-like kinase receptor (ALK1)) is a recently identified receptor that mediates LDL entry and transcytosis in endothelial cells (ECs) 2,3 . However, the role of this pathway in vivo is not yet known. In the present study, we show that genetic deletion of ALK1 in arterial ECs of mice substantially limits LDL accumulation, macrophage infiltration and atherosclerosis without affecting cholesterol or triglyceride levels. Moreover, a selective monoclonal antibody binding ALK1 efficiently blocked LDL transcytosis, but not bone morphogenetic protein-9 (BMP9) signaling, dramatically reducing plaque formation in LDL receptor knockout mice fed a high-fat diet. Thus, our results demonstrate that blocking LDL transcytosis into the endothelium may be a promising therapeutic strategy that targets the initiating event of atherosclerotic cardiovascular disease.

Publication Information

Output type

Research Output:
Contribution to journal
Article
Peer-review

Original language

English

Pages from-to (Number of pages)

Pages 438-448 (11 pages)

Journal (Volume, Issue Number)

Nature Cardiovascular Research (Volume 2, Issue 5)

Publication milestones

  • Published - 05/2023

Publication status

Published - 05/2023

ISSN

2731-0590

Publication IDs

  • Scopus: 85160850976

Funding Details

This work was supported by the NIH (grant no. R35HL139945) and an American Heart Association MERIT Award (to W.C.S.), an American Heart Association Postdoctoral Fellowship Award (to S.L.), a Canada Research Chair and an operating grant from the Canadian Institutes of Health Research (grant no. PJT168947 to W.L.L.). RVP measurements were made by the Internal Medicine Cardiology Center at Yale School of Medicine and blood pressure telemetry studies were conducted at The George M. O’Brien Kidney Center at Yale School of Medicine. This work was supported by the NIH (grant no. R35HL139945) and an American Heart Association MERIT Award (to W.C.S.), an American Heart Association Postdoctoral Fellowship Award (to S.L.), a Canada Research Chair and an operating grant from the Canadian Institutes of Health Research (grant no. PJT168947 to W.L.L.). RVP measurements were made by the Internal Medicine Cardiology Center at Yale School of Medicine and blood pressure telemetry studies were conducted at The George M. O’Brien Kidney Center at Yale School of Medicine.
FundersFunding numbers
NIH
R35HL139945
NIH
-
AHA
-
YSM
-
IRSC
PJT168947
IRSC
-
Canada Research Chairs
-