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Deficiency of lncRNA SNHG12 impairs ischemic limb neovascularization by altering an endothelial cell cycle pathway
David A. Gross, Henry S. Cheng, Rulin Zhuang, Michael G. McCoy, Daniel Pérez-Cremades, Zachary Salyers, A.K.M. Khyrul Wara, Stefan Haemmig, Terence E. Ryan, Mark W. Feinberg
David A. Gross, Henry S. Cheng, Rulin Zhuang, Michael G. McCoy, Daniel Pérez-Cremades, Zachary Salyers, A.K.M. Khyrul Wara, Stefan Haemmig, Terence E. Ryan, Mark W. Feinberg
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Research Article Angiogenesis Cardiology

Deficiency of lncRNA SNHG12 impairs ischemic limb neovascularization by altering an endothelial cell cycle pathway

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Abstract

SNHG12, a long noncoding RNA (lncRNA) dysregulated in atherosclerosis, is known to be a key regulator of vascular senescence in endothelial cells (ECs). However, its role in angiogenesis and peripheral artery disease has not been elucidated. Hind-limb ischemia studies using femoral artery ligation (FAL) in mice showed that SNHG12 expression falls readily in the acute phase of the response to limb ischemia in gastrocnemius muscle and recovers to normal when blood flow recovery is restored to ischemic muscle, indicating that it likely plays a role in the angiogenic response to ischemia. Gain- and loss-of-function studies demonstrated that SNHG12 regulated angiogenesis — SNHG12 deficiency reduced cell proliferation, migration, and endothelial sprouting, whereas overexpression promoted these angiogenic functions. We identified SNHG12 binding partners by proteomics that may contribute to its role in angiogenesis, including IGF-2 mRNA–binding protein 3 (IGF2BP3, also known as IMP3). RNA-Seq profiling of SNHG12-deficient ECs showed effects on angiogenesis pathways and identified a strong effect on cell cycle regulation, which may be modulated by IMP3. Knockdown of SNHG12 in mice undergoing FAL using injected gapmeRs) decreased angiogenesis, an effect that was more pronounced in a model of insulin-resistant db/db mice. RNA-Seq profiling of the EC and non-EC compartments in these mice revealed a likely role of SNHG12 knockdown on Wnt, Notch, and angiopoietin signaling pathways. Together, these findings indicate that SNHG12 plays an important role in the angiogenic EC response to ischemia.

Authors

David A. Gross, Henry S. Cheng, Rulin Zhuang, Michael G. McCoy, Daniel Pérez-Cremades, Zachary Salyers, A.K.M. Khyrul Wara, Stefan Haemmig, Terence E. Ryan, Mark W. Feinberg

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Figure 6

Knockdown of Snhg12 in a diabetic hind-limb ischemia model exacerbates neovascularization.

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Knockdown of Snhg12 in a diabetic hind-limb ischemia model exacerbates n...
Knockdown of Snhg12 in db/db mice results in a reduction in blood flow (BF) recovery after FAL due to a decrease in arterial diameter and the number of arteries and overall CD31 expression in muscle. (A) Mice were intramuscularly injected with control or Snhg12 gapmeRs into gastrocnemius muscle and subjected to FAL as shown in the schematic (top). Laser Doppler imaging was performed on mice (n = 8–9 in each group); representative images from days 0 and 13 are shown (bottom). (B) Normalized BF recovery is shown for Snhg12 gapmeR–injected mice versus control gapmeR–injected mice. (C) Quantitative RT-PCR expression of SNHG12 in gastrocnemius ECs and non-ECs, PBMCs, and liver of mice treated with intramuscular injection of control or Snhg12 gapmeR (n = 8–9 per condition). (D) Microscopy of fixed and sectioned gastrocnemius muscle from mice sacrificed on day 14. Quantification of SMA-positive arteries in gastrocnemius of Snhg12 gapmeR–treated mice relative to control gapmeR–treated mice revealed a decreased average arterial diameter and decreased number of arteries per high-power field (hpf) in addition to an overall decrease in total CD31 staining (20–25 fields per gastrocnemius, n = 8–9 mice per group; scale bars: 50 μm). *P < 0.05, **P < 0.01 using Student’s t test.

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