TY - JOUR
T1 - LATS1/2-CD38 Metabolic Rewiring Links Senescence to Intraplaque Thrombosis
AU - Kotla, Sivareddy
AU - Lee, Jonghae
AU - Ko, Kyung Ae
AU - Chen, Weiqing
AU - Samanthapudi, Venkata Subrahmanya Kumar
AU - Hoang, Oanh
AU - Mejia, Gilbert F.
AU - Li, Shengyu
AU - Lee, Hani
AU - Zhang, Aijun
AU - Cho, Min Soon
AU - Schadler, Keri L.
AU - Rivera, Luis Antonio
AU - Imanishi, Masaki
AU - Tavares Samperio, Kay Carlene
AU - Kim, Jung Hyun
AU - Ostos-Mendoza, Kelia C.
AU - Mariscal-Reyes, Karla N.
AU - Deswal, Anita
AU - Cooke, John P.
AU - Fujiwara, Keigi
AU - Palaskas, Nicolas L.
AU - Koutroumpakis, Efstratios
AU - Gi, Young Jin
AU - Pathania, Rajneesh
AU - Morrell, Criag
AU - Lorenzi, Philip L.
AU - Tan, Lin
AU - Mahmud, Iqbal
AU - Hanssen, Nordin M.J.
AU - Afshar-Kharghan, Vahid
AU - Hamilton, Dale J.
AU - Yvan-Charvet, Laurent
AU - Chini, Eduardo N.
AU - Herrmann, Joerg
AU - Vasquez, Hernan G.
AU - Shen, Ying H.
AU - Martin, James F.
AU - Xu, Haodong
AU - Seeley, Erin H.
AU - Burks, Jared K.
AU - Brookes, Paul S.
AU - Wang, Guangyu
AU - Le, Nhat Tu
AU - Abe, Jun ichi
N1 - Publisher Copyright:
© 2026 American Heart Association, Inc.
PY - 2026/7/6
Y1 - 2026/7/6
N2 - BACKGROUND: – Atherothrombosis, which underlies most acute coronary syndromes and is driven by intraplaque thrombosis, preferentially occurs in regions of disturbed blood flow (d-flow). Although LATS1/2 (large tumor suppressor kinases 1 and 2) are known regulators of endothelial mechanotransduction, the mechanisms by which d-flow connects endothelial senescence, proliferation, and intraplaque thrombosis remain poorly understood. METHODS: – We investigated endothelial cell (EC)-specific roles of LATS1/2 using inducible EC-specific knockout mice in a partial carotid ligation model. Spatial multiomics of human and mouse plaques was performed using imaging mass cytometry, COMET sequential immunofluorescence, and spatial metabolomics. RESULTS: – Tamoxifen-induced deletion of both Lats1 and Lats2 (homozygous) in ECs caused fatal edema and increased vascular permeability. In contrast, Lats1het(±)/Lats2 homo(−/−)-EC-specific knockout mice survived and developed spontaneous atherothrombotic plaques with neovascularization. Spatial proteomics revealed that LATS1/2 loss induced a senescence-associated stemness phenotype driven by CD38 upregulation. Spatial metabolomics showed sulfite and taurine accumulation, indicating SUOX (sulfite oxidase) deficiency. CD38 suppressed SUOX, demonstrated a switch into the reverse mode of mitochondrial complex V, increased succinate dehydrogenase activity, and promoted ATP consumption. Despite ATP depletion, glutamate metabolism and the citric acid cycle flux increased, sustaining EC proliferation under energetic stress. This senescence-associated stemness state promoted both proliferation and senescence, leading to fragile, leaky neovessels and intraplaque thrombotic lesions. Pharmacological CD38 inhibition attenuated these phenotypes. Similar EC states were observed in human plaques. CONCLUSIONS: – Loss of LATS1/2 in ECs induces a CD38-associated senescence-associated stemness-like phenotype that promotes intraplaque thrombosis through mitochondrial metabolic reprogramming, including changes consistent with reverse-mode operation of mitochondrial complex V. These findings define a mechanistic link between disturbed flow, endothelial metabolic reprogramming, and intraplaque thrombosis and hemorrhage.
AB - BACKGROUND: – Atherothrombosis, which underlies most acute coronary syndromes and is driven by intraplaque thrombosis, preferentially occurs in regions of disturbed blood flow (d-flow). Although LATS1/2 (large tumor suppressor kinases 1 and 2) are known regulators of endothelial mechanotransduction, the mechanisms by which d-flow connects endothelial senescence, proliferation, and intraplaque thrombosis remain poorly understood. METHODS: – We investigated endothelial cell (EC)-specific roles of LATS1/2 using inducible EC-specific knockout mice in a partial carotid ligation model. Spatial multiomics of human and mouse plaques was performed using imaging mass cytometry, COMET sequential immunofluorescence, and spatial metabolomics. RESULTS: – Tamoxifen-induced deletion of both Lats1 and Lats2 (homozygous) in ECs caused fatal edema and increased vascular permeability. In contrast, Lats1het(±)/Lats2 homo(−/−)-EC-specific knockout mice survived and developed spontaneous atherothrombotic plaques with neovascularization. Spatial proteomics revealed that LATS1/2 loss induced a senescence-associated stemness phenotype driven by CD38 upregulation. Spatial metabolomics showed sulfite and taurine accumulation, indicating SUOX (sulfite oxidase) deficiency. CD38 suppressed SUOX, demonstrated a switch into the reverse mode of mitochondrial complex V, increased succinate dehydrogenase activity, and promoted ATP consumption. Despite ATP depletion, glutamate metabolism and the citric acid cycle flux increased, sustaining EC proliferation under energetic stress. This senescence-associated stemness state promoted both proliferation and senescence, leading to fragile, leaky neovessels and intraplaque thrombotic lesions. Pharmacological CD38 inhibition attenuated these phenotypes. Similar EC states were observed in human plaques. CONCLUSIONS: – Loss of LATS1/2 in ECs induces a CD38-associated senescence-associated stemness-like phenotype that promotes intraplaque thrombosis through mitochondrial metabolic reprogramming, including changes consistent with reverse-mode operation of mitochondrial complex V. These findings define a mechanistic link between disturbed flow, endothelial metabolic reprogramming, and intraplaque thrombosis and hemorrhage.
KW - endothelial cells
KW - glutamate
KW - multiomics
KW - proteomics
KW - thrombosis
KW - Metabolomics
KW - Humans
KW - Mice, Inbred C57BL
KW - Cells, Cultured
KW - Metabolic Reprogramming
KW - Plaque, Atherosclerotic
KW - ADP-ribosyl Cyclase 1/metabolism
KW - Mice, Knockout
KW - Tumor Suppressor Proteins/genetics
KW - Animals
KW - Endothelial Cells/metabolism
KW - Mice
KW - Cellular Senescence/physiology
KW - Protein Serine-Threonine Kinases/genetics
KW - Thrombosis/metabolism
UR - https://www.scopus.com/pages/publications/105041032652
UR - https://www.scopus.com/inward/citedby.url?scp=105041032652&partnerID=8YFLogxK
U2 - 10.1161/CIRCRESAHA.125.327427
DO - 10.1161/CIRCRESAHA.125.327427
M3 - Article
C2 - 42200276
AN - SCOPUS:105041032652
SN - 0009-7330
VL - 139
SP - e327427
JO - Circulation Research
JF - Circulation Research
IS - 2
M1 - e327427
ER -