Evidence mapPaperPMID 39297205Full record

ArticleArteriosclerosis, thrombosis, and vascular biology2024

Endothelial TGF-β Signaling Regulates Endothelial-Mesenchymal Transition During Arteriovenous Fistula Remodeling in Mice With Chronic Kidney Disease.

Weichang Zhang, Luis Gonzalez, Xin Li, Hualong Bai, Zhuo Li, Ryosuke Taniguchi, John Langford, Yuichi Ohashi, Carly Thaxton, Yukihiko Aoyagi and 7 more

Abstract read
In one paragraph

Article in Arteriosclerosis, thrombosis, and vascular biology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 20 papers.

0numbers the graph read from it
0cells of the map it votes in
20citing papers in PubMed
field-weighted citation impact
1 · What the graph read from it

What it found

Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.

The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.

Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

20 citing papers in PubMed.

  1. A Vein Attempt? Experimental Models for Arteriovenous Fistula Research.Cardiovascular engineering and technology · 2026
    Review
  2. Article
  3. Article
  4. Review
  5. Review
  6. Review
  7. Human Data First: New Biological Premises for Arteriovenous Fistula Research.Arteriosclerosis, thrombosis, and vascular biology · 2026
    Review
  8. Review
  9. Article
  10. Article
  11. [Role of the TGFZhong nan da xue xue bao. Yi xue ban = Journal of Central South University. Medical sciences · 2025
    Review
  12. Review
  13. Article
  14. Observational
  15. Article
  16. Endothelial dysfunction in chronic kidney disease: a clinical perspective.American journal of physiology. Heart and circulatory physiology · 2025
    Review
  17. Role of Perivascular Adipose Tissue in Vein Remodeling.Arteriosclerosis, thrombosis, and vascular biology · 2025
    Review
  18. Article
  19. Article
  20. Review
4 · The record

Corrections and comments

5 · Who and what money

Authors and funding

17 authors.

Weichang ZhangState Key Laboratory of Cardiovascular Diseases, Center of Vascular Surgery, Fuwai Hospital, National Center for Cardiovascular Diseases, Chinese Academy of Medical Science and Peking Union Medical College, Beijing, China (W.Z., C.S.).
Luis GonzalezVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.ORCID 0000-0003-2877-7287
Xin LiState Key Laboratory of Cardiovascular Diseases, Center of Vascular Surgery, Fuwai Hospital, National Center for Cardiovascular Diseases, Chinese Academy of Medical Science and Peking Union Medical College, Beijing, China (W.Z., C.S.).
Hualong BaiVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.
Zhuo LiVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.
Ryosuke TaniguchiVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.
John LangfordVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.ORCID 0000-0002-7307-8664
Yuichi OhashiVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.
Carly ThaxtonVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.ORCID 0000-0001-9270-8708
Yukihiko AoyagiVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.
Bogdan YatsulaVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.
Kathleen A MartinVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.ORCID 0000-0002-1748-0034
Julie GoodwinVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.ORCID 0000-0002-8986-8695
George TellidesVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.ORCID 0000-0001-7042-8190
Xiaochun LongVascular Biology Center, Medical College of Georgia at Augusta University (X. Long).
Chang ShuState Key Laboratory of Cardiovascular Diseases, Center of Vascular Surgery, Fuwai Hospital, National Center for Cardiovascular Diseases, Chinese Academy of Medical Science and Peking Union Medical College, Beijing, China (W.Z., C.S.).
Alan DardikVascular Biology and Therapeutics Program (W.Z., L.G., H.B., Z.L., R.T., J.L., Y.O., C.T., A.Y., B.Y., K.A.M., J.G., G.T., A.D.), Yale School of Medicine, New Haven, CT.ORCID 0000-0001-5022-7367

Funding

Yale Clinical and Translational Science AwardUL1TR001863 · YALE UNIVERSITY · 2025 to 2025
$9.9M
Function and Regulation of TSPAN2 in Vascular DiseaseR01HL139794 · NHLBI · AUGUSTA UNIVERSITY · PI Xiaochun Long · 2022 to 2023
$1.7M
Adaptive immunity regulates arteriovenous fistula remodelingR01HL162580 · NHLBI · YALE UNIVERSITY · 2024 to 2025
$1.5M
Manipulating the matrix to improve arteriovenous fistula patencyR01HL144476 · YALE UNIVERSITY · 2025 to 2025
$758k
Molecular control of vascular smooth muscle reprogramming in arteriovenous fistula maturationR01DK135284 · AUGUSTA UNIVERSITY · 2025 to 2025
$686k
Vascular Smooth Muscle Protein Quality Control and Aortic Aneurysm FormationR01HL170024 · AUGUSTA UNIVERSITY · 2025 to 2025
$666k
NCATS NIH HHS UL1 TR001863NHLBI NIH HHS R01 HL122686NHLBI NIH HHS R01 HL128406NHLBI NIH HHS R01 HL139794NHLBI NIH HHS R01 HL144476NHLBI NIH HHS R01 HL162580NHLBI NIH HHS R01 HL170024NIDDK NIH HHS R01 DK135284
6 · The paper itself

Abstract

backgroundArteriovenous fistulae (AVF) are the preferred vascular access for hemodialysis in patients with end-stage kidney disease. Chronic kidney disease (CKD) is associated with endothelial injury, impaired AVF maturation, and reduced patency, as well as utilization. Because CKD is characterized by multiple pathophysiological processes that induce endothelial-to-mesenchymal transition (EndMT), we hypothesized that CKD promotes EndMT during venous remodeling and that disruption of endothelial TGF (transforming growth factor)-β signaling inhibits EndMT to prevent AVF failure even in the end-stage kidney disease environment.

methodsThe mouse 5/6 nephrectomy and aortocaval fistula models were used. CKD was created via 5/6 nephrectomy, with controls of no (0/6) or partial (3/6) nephrectomy in C57BL/6J mice. AVF were created in mice with knockdown of TGF-βR1/R2 (TGF-β receptors type 1/2) in either smooth muscle cells or endothelial cells. AVF diameters and patency were measured and confirmed by serial ultrasound examination. AVF, both murine and human, were examined using Western blot, histology, and immunofluorescence. Human and mouse endothelial cells were used for in vitro experiments.

resultsCKD accelerates TGF-β activation and promotes EndMT that is associated with increased AVF wall thickness and reduced patency in mice. Inhibition of TGF-β signaling in both endothelial cells and smooth muscle cells decreased smooth muscle cell proliferation in the AVF wall, attenuated EndMT, and was associated with reduced wall thickness, increased outward remodeling, and improved AVF patency. Human AVF also showed increased TGF-β signaling and EndMT.

conclusionsCKD promotes EndMT and reduces AVF patency. Inhibition of TGF-β signaling, especially disruption of endothelial cell-specific TGF-β signaling, attenuates EndMT and improves AVF patency in mouse AVF. Inhibition of EndMT may be a therapeutic approach of translational significance to improve AVF patency in human patients with CKD.

Indexed as

Arteriovenous Shunt, SurgicalDisease Models, AnimalEndothelial CellsMice, Inbred C57BLReceptor, Transforming Growth Factor-beta Type IRenal Insufficiency, ChronicSignal TransductionTransforming Growth Factor betaVascular RemodelingAnimalsCell ProliferationCells, CulturedEndothelial-Mesenchymal TransitionEpithelial-Mesenchymal TransitionGraft Occlusion, VascularHumansProtein Serine-Threonine KinasesReceptors, Transforming Growth Factor betaReceptor, Transforming Growth Factor-beta Type IReceptor, Transforming Growth Factor-beta Type IITGFBR1 protein, humanTgfbr2 protein, mouseTransforming Growth Factor betaarteriovenous fistulacell differentiationendothelial cellsendothelial-mesenchymal transitionkidney failure, chronicmyocytes, smooth muscleTGF-β

Identifiers

PMID39297205
PMCPMC11593991

What Socratic holds

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Registered trials

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.