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Nicholls, S. J.

Publications and source records attributed to Nicholls, S. J..

3 recordsLinked to original sources

Therapeutic knockdown of MLKL reduces diet-induced obesity and improves insulin signalling in mature adipocytes

Obesity affects one in three adults and is complicated by adipose inflammation, lipotoxicity and cell death. We previously identified RIPK1 as a genetic determinant of human obesity risk and adipose inflammation. Because RIPK1 is the apical kinase in the necroptosis pathway upstream of RIPK3 and the executioner protein MLKL, and emerging evidence links MLKL to lipid metabolism, MLKL has surfaced as a potential metabolic regulator. However, conflicting findings in Mlkl knockout mice fed a high fat diet have left its therapeutic relevance unresolved. MLKL has not been previously targeted through therapeutic knockdown in vivo in the context of diet-induced obesity. Here, we evaluated two independent MLKL antisense oligonucleotides (ASOs) in high fat diet (HFD)-fed C57BL/6J mice. In a 24-week progression model, MLKL ASO markedly reduced body weight, fat mass and hepatic steatosis compared with controls, while preserving lean mass. MLKL knockdown also lowered the respiratory exchange ratio, indicating a shift toward increased fat oxidation. In the intervention model, once obesity was established after 12 weeks of HFD feeding, both MLKL ASOs, and similarly, two independent RIPK1 ASOs, reversed weight gain and improved systemic glucose control. In vitro, MLKL-CRISPR/Cas9 knockout blocked 3T3-L1 adipogenesis, indicating a requirement for MLKL during adipocyte differentiation. However, in mature adipocytes, MLKL siRNA reduced palmitic acid-induced lipid accumulation, increased isoprenaline-stimulated lipolysis, and prevented TNF-mediated suppression of insulin-mediated AKT signalling and glucose uptake. Collectively, these findings demonstrate that partial MLKL suppression reprograms whole-body energy metabolism, enhances insulin sensitivity and limits diet-induced adiposity. MLKL, therefore, represents a promising and mechanistically novel therapeutic target for obesity and insulin resistance.

physiology↗

Eicosapentaenoic Acid Enhances Angiogenesis and Reperfusion After Ischemia: Comparative Effects of Omega-3 Fatty Acids in a Murine Hind Limb Model

BackgroundOmega-3 polyunsaturated fatty acids are known to confer benefits in the prevention of cardiovascular diseases. Among these, eicosapentaenoic acid (EPA) appears to be more effective than docosahexaenoic acid (DHA) in ischemic vascular conditions. However, the specific roles of EPA and DHA in limb angiogenesis and post-ischemic reperfusion remain unclear. Moreover, omega-3 fatty acids remain understudied for peripheral artery disease (PAD) intervention. The aim was to compare the effect of high dose omega-3 fatty acids, EPA and DHA on ischemic tissue reperfusion, angiogenesis and vascular remodelling in mice. MethodsHind limb ischemia (HLI) was performed in mice and reperfusion was measured using laser speckle contrast imaging over two weeks post-HLI. Mice were treated daily with oral high-dose EPA or DHA (600 mg/kg/day) or vehicle (olive oil). Gastrocnemius muscle tissue was collected for analysis of mRNA and protein markers of angiogenesis. ResultsFollowing HLI, blood flow was restored more rapidly in mice treated with EPA compared with vehicle. DHA treatment did not enhance reperfusion. Histological assessment revealed significant muscle fibre regeneration after HLI, which was further improved by EPA. CD31+ neo vessel density was also increased in the EPA group. Collectively, these findings indicate that EPA promotes angiogenesis after peripheral vascular ischemia, whereas DHA does not. The beneficial effects of EPA are associated with upregulation of hypoxia inducible factor . ConclusionsHigh-dose EPA accelerated post-ischemic reperfusion, while DHA was ineffective. These results highlight EPA as a potential therapeutic strategy for improving limb perfusion and vascular repair in patients with PAD. Research PerspectiveO_ST_ABSWhat Is New?C_ST_ABSO_LIOmega-3 fatty acid, eicosapentaenoic acid (EPA) accelerates post-ischaemic reperfusion following hind limb ischemia injury in mice. C_LIO_LIOmega 3 fatty acid, docosahexaenoic acid (DHA), does not show the same improvement in reperfusion after hind limb ischemia C_LIO_LIEPA can promote vasculogenesis and stimulate muscle fibre regeneration. C_LI What question should be addressed next?O_LIHigh dose purified EPA, in the form of icosapent ethyl reduces mortality from coronary artery disease. Peripheral artery disease (PAD) is a common co-morbidity yet high quality interventional trials for icosapent ethyl for PAD are lacking. Therapeutic angiogenesis has the potential to improve PAD symptoms and disease progression but there are no efficacious candidates. Icosapent ethyl should be trialled to determine whether functional outcomes are improved in PAD. C_LI

physiology↗

Self-renewing tissue-resident endothelial-macrophage progenitor cells originate from yolk sac and are a local source of inflammation and neovascularization in postnatal aorta

Converging evidence indicates that extra-embryonic yolk sac is the source of both macrophages and endothelial cells in adult mouse tissues. Prevailing views are that these embryonically derived cells are maintained after birth by proliferative self-renewal in their differentiated states. Here we identify clonogenic endothelial-macrophage (EndoMac) progenitor cells in the adventitia of embryonic and postnatal mouse aorta, that are independent of Flt3-mediated bone marrow hematopoiesis and derive from an early embryonic CX3CR1+ and CSF1R+ source. These bipotent progenitors are proliferative and vasculogenic, contributing to adventitial neovascularization and forming perfused blood vessels after transfer into ischemic tissue. We establish a regulatory role for angiotensin II, which enhances their clonogenic and differentiation properties and rapidly stimulates their proliferative expansion in vivo. Our findings demonstrate that embryonically derived EndoMac progenitors participate in local vasculogenic responses in the aortic wall by contributing to the expansion of endothelial cells and macrophages postnatally.

cell biology↗