» Articles » PMID: 23288169

Kalirin Promotes Neointimal Hyperplasia by Activating Rac in Smooth Muscle Cells

Overview
Date 2013 Jan 5
PMID 23288169
Citations 33
Authors
Affiliations
Soon will be listed here.
Abstract

Objective: Kalirin is a multifunctional protein that contains 2 guanine nucleotide exchange factor domains for the GTPases Rac1 and RhoA. Variants of KALRN have been associated with atherosclerosis in humans, but Kalirin's activity has been characterized almost exclusively in the central nervous system. We therefore tested the hypothesis that Kalirin functions as a Rho-guanine nucleotide exchange factor in arterial smooth muscle cells (SMCs).

Approach And Results: Kalirin-9 protein is expressed abundantly in aorta and bone marrow, as well as in cultured SMCs, endothelial cells, and macrophages. Moreover, arterial Kalirin was upregulated during early atherogenesis in apolipoprotein E-deficient mice. In cultured SMCs, signaling was affected similarly in 3 models of Kalirin loss-of-function: heterozygous Kalrn deletion, Kalirin RNAi, and treatment with the Kalirin Rho-guanine nucleotide exchange factor -1 inhibitor 1-(3-nitrophenyl)-1H-pyrrole-2,5-dione. With reduced Kalirin function, SMCs showed normal RhoA activation but diminished Rac1 activation, assessed as reduced Rac-GTP levels, p21-activated kinase autophosphorylation, and SMC migration. Kalrn(-/+) SMCs proliferated 30% less rapidly than wild-type SMCs. Neointimal hyperplasia engendered by carotid endothelial denudation was ≈60% less in Kalrn(-/+) and SMC-specific Kalrn(-/+) mice than in control mice.

Conclusions: Kalirin functions as a guanine nucleotide exchange factor for Rac1 in SMCs, and promotes SMC migration and proliferation both in vitro and in vivo.

Citing Articles

Identification and characterization of human KALRN mRNA and Kalirin protein isoforms.

Mould A, Wright D, Bornemann K, Hengerer B, Pinnock R, Drydale E Cereb Cortex. 2024; 34(12).

PMID: 39656879 PMC: 11630257. DOI: 10.1093/cercor/bhae470.


Early Injury Landscape in Vein Harvest by Single-Cell and Spatial Transcriptomics.

Michaud M, Mota L, Bakhtiari M, Thomas B, Tomeo J, Pilcher W Circ Res. 2024; 135(1):110-134.

PMID: 38808504 PMC: 11189745. DOI: 10.1161/CIRCRESAHA.123.323939.


Integrated single-nuclei and spatial transcriptomic analysis reveals propagation of early acute vein harvest and distension injury signaling pathways following arterial implantation.

Michaud M, Mota L, Bakhtiari M, Thomas B, Tomeo J, Pilcher W bioRxiv. 2023; .

PMID: 37961724 PMC: 10635041. DOI: 10.1101/2023.10.31.564995.


PDGF regulates guanylate cyclase expression and cGMP signaling in vascular smooth muscle.

Hildebrand S, Ibrahim M, Schlitzer A, Maegdefessel L, Roll W, Pfeifer A Commun Biol. 2022; 5(1):197.

PMID: 35241778 PMC: 8894477. DOI: 10.1038/s42003-022-03140-2.


The Emerging Role of Rho Guanine Nucleotide Exchange Factors in Cardiovascular Disorders: Insights Into Atherosclerosis: A Mini Review.

Li M, Jiao Q, Xin W, Niu S, Liu M, Song Y Front Cardiovasc Med. 2022; 8:782098.

PMID: 35047576 PMC: 8761945. DOI: 10.3389/fcvm.2021.782098.


References
1.
Boucher P, Gotthardt M, Li W, Anderson R, Herz J . LRP: role in vascular wall integrity and protection from atherosclerosis. Science. 2003; 300(5617):329-32. DOI: 10.1126/science.1082095. View

2.
Ratovitski E, Alam M, Quick R, McMillan A, Bao C, Kozlovsky C . Kalirin inhibition of inducible nitric-oxide synthase. J Biol Chem. 1999; 274(2):993-9. DOI: 10.1074/jbc.274.2.993. View

3.
Vishwanatha K, Wang Y, Keutmann H, Mains R, Eipper B . Structural organization of the nine spectrin repeats of Kalirin. Biochemistry. 2012; 51(28):5663-73. PMC: 3447990. DOI: 10.1021/bi300583s. View

4.
Nakashima Y, Plump A, Raines E, Breslow J, Ross R . ApoE-deficient mice develop lesions of all phases of atherosclerosis throughout the arterial tree. Arterioscler Thromb. 1994; 14(1):133-40. DOI: 10.1161/01.atv.14.1.133. View

5.
Kumar R, Gururaj A, Barnes C . p21-activated kinases in cancer. Nat Rev Cancer. 2006; 6(6):459-71. DOI: 10.1038/nrc1892. View