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Budbazar, E.

Publications and source records attributed to Budbazar, E..

2 recordsLinked to original sources

Pharmacological Activation of NO-Sensitive Guanylyl Cyclase Ameliorates Obesity-Induced Arterial Stiffness

ObjectiveArterial stiffness, or loss of elastic compliance in large arteries, is an independent precursor of cardiovascular disease (CVD)1 and dementia2. Akin to anti-hypertensive and lipid-lowering drugs, arterial de-stiffening therapies could be beneficial at decreasing CVD risk. We previously discovered that enhanced cytoskeletal actin polymerization in vascular smooth muscle cells (VSMCs) contributes to increased arterial stiffness3. In aortas and VSMCs, we previously found that decreased NO-sensitive guanylyl cyclase (NO-GC), the NO receptor which synthesizes cGMP, caused downregulation of cGMP-dependent protein kinase I (cGKI) and of its target vasodilator-stimulated phosphoprotein (pVASPS239), leading to increased cytoskeletal actin polymerization3. In the current study, we tested whether activating NO-GC with an NO-GC activator (cinaciguat) modulates pVASPS239 and cytoskeletal actin polymerization in VSMCs, thereby preventing obesity-induced arterial stiffness. Approach & ResultsCinaciguat administration (5 mg/kg) to high fat, high sucrose diet (HFHS)-fed mice, our established model of arterial stiffness4, (1) decreased pulse wave velocity, the in vivo index of arterial stiffness, without affecting blood pressure, (2) increased aortic pVASPS239 levels, and (3) decreased the ratio of filamentous (F) to globular (G) actin, compared to vehicle administration. In cultured VSMCs, cinaciguat (10 mol/L) increased pVASPS239 levels and decreased the F/G actin ratio at baseline and after stimulation with the cytokine tumor necrosis factor (TNF), used to mimic the inflammatory milieu of HFHS aortas. These effects were abrogated in aortas and VSMCs from mice with smooth muscle-specific cGKI deletion (cGKISMKO), while being mimicked by a cell-permeable cGMP analog (8-Br-cGMP, 1 mol/L), which also decreased VSMC stiffness in vitro. ConclusionsCollectively, our data strongly support the notion that pharmacological NO-GC activation would be beneficial in decreasing obesity-associated arterial stiffness by decreasing VSMC cytoskeletal actin hyper-polymerization. If translated to humans, NO-GC activators could become a viable approach to clinically treat arterial stiffness, which remains an unmet medical need.

pharmacology and toxicology↗

A Bio-inspired Latent TGF-β Conjugated Scaffold Improves Neocartilage Development

In cartilage tissue engineering, active TGF-{beta} is conventionally supplemented in culture medium at highly supraphysiologic doses to accelerate neocartilage development. While this approach enhances cartilage extracellular matrix (ECM) biosynthesis, it further promotes tissue features detrimental to hyaline cartilage function, including the induction of tissue swelling, hyperplasia, hypertrophy, and ECM heterogeneities. In contrast, during native cartilage development, chondrocytes are surrounded by TGF-{beta} configured in a latent complex (LTGF-{beta}), which undergoes cell-mediated activation, giving rise to moderated, physiologic dosing regimens that enhance ECM biosynthesis while avoiding detrimental features associated with TGF-{beta} excesses. Here, we explore a bio-inspired strategy, consisting of LTGF-{beta}-conjugated scaffolds, providing TGF-{beta} exposure regimens that are moderated and uniformly administered throughout the construct. Specifically, we evaluate the performance of LTGF-{beta} scaffolds to improve neocartilage development with bovine chondrocyte-seeded agarose constructs compared to outcomes from active TGF-{beta} media supplementation (MS) at a physiologic 0.3 ng/mL dose (MS-0.3), supraphysiologic 10 ng/mL dose (MS-10), or TGF-{beta} free. For small-size constructs ({emptyset}3x2 mm), LTGF-{beta} scaffolds yield neocartilage that achieves native-matched mechanical properties (800-925 kPa) and sGAG content (6.6%-7.1%), while providing a cell morphology and collagen distribution more reminiscent of hyaline cartilage. LTGF-{beta} scaffolds further afford an optimal chondrogenic phenotype, marked by a 12-to 28-fold reduction of COL-I expression relative to TGF-{beta}-free and a 7-to 17-fold reduction of COL-X expression relative to MS-10. Further, for large-size constructs, which approach the dimensions needed for clinical cartilage repair, LTGF-{beta} scaffolds significantly reduce mechanical and biochemical heterogeneities relative to MS-0.3 and MS-10. Overall, the use of LTGF-{beta} scaffolds improves the composition, structure, material properties, and cell phenotype of neocartilage.

bioengineering↗