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Biomedical subjects

Alexandra E Butler

Publications and source records attributed to Alexandra E Butler.

3 recordsLinked to original sources

Metabolic Stress Testing Reveals Persistent Lipid-Handling Dysfunction in Women With Polycystic Ovary Syndrome Despite Exercise Training.

AIM: Polycystic ovary syndrome (PCOS) is associated with insulin resistance and metabolic dysfunction, yet baseline metabolomic studies show inconsistent findings. We investigated whether metabolic abnormalities in PCOS emerge under physiological stress and how these responses are modified by exercise training. MATERIALS AND METHODS: Twelve women with PCOS and 10 controls completed hyperinsulinaemic-euglycaemic clamps with randomised saline or lipid infusion, before and after 8 weeks of supervised exercise. Plasma metabolomics (163 metabolites) were measured at baseline, post-infusion and post-clamp. Linear mixed-effects models assessed Group × Timepoint × Intervention interactions. RESULTS: No baseline metabolite differences were observed between groups. A significant three-way interaction (p = 0.008) indicated condition-dependent trajectory divergence. Post hoc analysis revealed a specific divergence during post-exercise lipid challenge (p = 0.048). Women with PCOS showed reduced suppression of ether-linked phosphatidylcholines during insulin-stimulated lipid loading (PC ae C44:4, p = 0.031), despite exercise-induced improvements in fitness and normalisation of amino acid profiles. Exploratory metabolite ratios suggested impaired substrate coordination under stress. CONCLUSIONS: Metabolic defects in PCOS are stress-dependent and not detectable at rest. Exercise training improves resting metabolism but reveals persistent impairment in adaptive lipid handling during combined insulin and lipid challenges, suggesting impaired coordination of substrate supply during metabolic stress. TRIAL REGISTRATION: ClinicalTrials.gov identifier: ISRCTN42448814.

Humans

CRISPR as a Tool to Uncover Gene Function in Polycystic Ovary Syndrome: A Literature Review of Experimental Models Targeting Ovarian and Metabolic Genes.

Polycystic ovary syndrome (PCOS) is a complex disorder characterized by reproductive abnormalities such as hyperandrogenism, ovulatory dysfunction, and polycystic ovarian morphology, and is frequently accompanied by metabolic disturbances such as insulin resistance, obesity and dyslipidemia. Genome-wide association studies (GWASs) have identified several susceptibility loci, yet little is known about their functional implications. Clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 (CRISPR/Cas9) has emerged as a powerful gene editing tool in bridging this gap by allowing researchers to directly target candidate genes in ovarian and metabolic pathways. For instance, experimental models have highlighted the role of CYP17A1 and DENND1A.V2 in androgen excess, anti-Müllerian hormone (AMH) in follicular arrest, and insulin receptor substrate 1 (IRS1) and PPARγ in insulin signaling and adipogenesis. To highlight the multifactorial nature of PCOS, animal models, including zebrafish and rodents, have been used to reveal interactions between reproductive and metabolic phenotypes. Nevertheless, most studies remain restricted to single-gene models, and dual-gene models or combined gene editing and hormonal induction models remain underexplored. Future research integrating precision editing, multi-omic platforms, and patient-derived organoids may provide more accurate disease models and novel therapeutic strategies.

Polycystic Ovary Syndrome

Shared and divergent acute cardiovascular risk protein responses to lipid infusion in women with and without PCOS.

AIMS: Elevated circulating lipids are linked to cardiovascular disease (CVD), especially in insulin-resistant states like polycystic ovary syndrome (PCOS), but their effects on cardiovascular risk proteins (CVRPs) remain unclear. This study used a two-step approach to examine acute cardiovascular proteomic responses to lipid-induced metabolic stress. We first identified proteins altered by lipids and insulin in healthy control (HC) women, then assessed whether these responses were similar or divergent in women with PCOS. METHODS: In a randomised cross-over study, 10 healthy controls and 12 women with PCOS underwent 5-h saline (control) or intralipid infusions. After 3&#x2009;h, a 2-h hyperinsulinemic-euglycemic clamp was initiated. Plasma CVRP expression was assessed at baseline, post-lipid (180&#x2009;min) and post-clamp (300&#x2009;min) using SOMAscan proteomics. STRING and pathway enrichment analyses were performed to explore functional associations. RESULTS: In the HC group, lipid infusion altered the expression of 11 out of 54 CVRPs including increases in RANK, IL2RA, TACI, SLAF5 and DCN (p <0.05) and decreases in THPO, BOC, SOD2, FGF23, and AgRP (p <0.05). Most changes reversed with insulin, but BOC, SOD2, MMP12, FGF23, and DCN remained dysregulated. In PCOS, responses mirrored the HC group except for lower AgRP following lipid infusion (p <0.01), and persistent elevation of SLAF5 and DCN following insulin (p <0.05). Enrichment analysis linked altered proteins to immune activation, cell proliferation, and cytokine-receptor signalling. CONCLUSION: Acute lipid infusion revealed shared and phenotype-specific proteomic responses linked to early vascular stress. In PCOS, persistent dysregulation suggests reduced metabolic adaptability, with exploratory signals that may complement established biomarkers of early cardiovascular risk.

Humans