PubMed HealthSearch

Biomedical subjects

Corinne Vigouroux

Publications and source records attributed to Corinne Vigouroux.

3 recordsLinked to original sources

Glycemic and Renal Effects of SGLT2 Inhibitors in Monogenic Diabetes: A Real-World National Study.

AIMS: Evidence regarding the efficacy and safety of sodium-glucose cotransporter 2 inhibitors (SGLT2i) in monogenic diabetes is limited. We evaluated real-world metabolic, renal, and safety outcomes of SGLT2i therapy in adults with monogenic diabetes. MATERIALS AND METHODS: This multicenter retrospective study included adults with genetically confirmed monogenic diabetes treated with SGLT2i. Clinical and biological data were collected at baseline and after approximately 1 and 2 years. Longitudinal changes were analysed using linear mixed-effects models adjusted for baseline value, age, and sex and treatment intensification. RESULTS: Forty patients (mean age 48.6 ± 15.2 years) with MIDD (n = 16), HNF1B-MODY (n = 9), HNF1A/HNF4A-MODY (n = 11), or other MODY subtypes (ABCC8, INS, RFX6; n = 4) were followed for 23.9 ± 5.9 months. HbA1c remained stable overall but decreased significantly in patients with baseline HbA1c ≥ 8% (9.6% ± 1.3% to 7.6% ± 0.7%; p = 0.001). UACR declined significantly (-35.6% at 1 year and -43.5% at 2 years; p = 0.004), particularly in those with baseline CKD (trend). Genotype-specific trends suggested greater glycemic improvement in HNF1A/HNF4A-MODY and greater UACR reduction in MIDD. eGFR declined modestly over time. Non-serious adverse events occurred in 15% of patients, 7.5% discontinued treatment, and no ketoacidosis, acute kidney injury, or deaths were reported. CONCLUSIONS: In this nationwide cohort of patients with monogenic diabetes-the largest reported to date-SGLT2i therapy was associated with improved glycemic control in individuals with baseline HbA1c ≥ 8%, reduced albuminuria, and showed a favourable safety profile. These findings support SGLT2i as a potential therapeutic option that warrants confirmation in larger controlled studies.

Humans

Insulin receptor variants: Extending the traditional Mendelian spectrum.

PURPOSE: INSR encodes the insulin receptor, the essential entrainer of growth and metabolism to nutritional cues. INSR variants cause a spectrum of monogenic insulin resistance (IR) syndromes, namely, type A insulin resistance, Rabson-Mendenhall, and Donohue syndromes. However, to our knowledge, no large cohort studies focused on variant classification and its diagnostic value have been described. METHODS: This multicentric cohort study included 73 patients carrying INSR variants, referred for IR by 52 centers from 6 countries. Variants were classified using new bioinformatic tools relying on different prediction mechanisms and the American College of Medical Genetics and Genomics guidelines. RESULTS: Besides expanding the INSR mutational spectrum, this study suggested a semidominant inheritance in several Donohue/Rabson-Mendenhall syndrome families. Questioning strictly Mendelian inheritance, heterozygous loss-of-function (LoF) variants were mostly found in overweight patients, with a higher LoF frequency in IR patients than in the general population (odds ratio 5.77). Diagnostic challenges arose when trying to refine classification criteria for variants of uncertain significance. Among the variant effect predictors assessed, MISTIC and AlphaMissense outperformed REVEL. CONCLUSION: The spectrum of INSR-related disorders extends beyond traditional entities. Heterozygous INSR LoF variants may increase IR susceptibility. International collaboration and functional assays are needed to drive precision medicine forward.

Humans

ADH1B, the adipocyte-enriched alcohol dehydrogenase, plays an essential, cell-autonomous role in human adipogenesis.

Alcohol dehydrogenase 1B (ADH1B) is a primate-specific enzyme which, uniquely among the ADH class 1 family, is highly expressed both in adipose tissue and liver. Its expression in adipose tissue is reduced in obesity and increased by insulin stimulation. Interference with ADH1B expression has also been reported to impair adipocyte function. To better understand the role of ADH1B in adipocytes, we used CRISPR/Cas9 to delete ADH1B in human adipose stem cells (ASC). Cells lacking ADH1B failed to differentiate into mature adipocytes manifested by minimal triglyceride accumulation and a marked reduction in expression of established adipocyte markers. As ADH1B is capable of converting retinol to retinoic acid (RA), we conducted rescue experiments. Incubation of ADH1B-deficient preadipocytes with 9-cis-RA, but not with all-transretinol, significantly rescued their ability to accumulate lipids and express markers of adipocyte differentiation. A homozygous missense variant in ADH1B (p.Arg313Cys) was found in a patient with congenital lipodystrophy of unknown cause. This variant significantly impaired the protein's dimerization, enzymatic activity, and its ability to rescue differentiation in ADH1B-deficient ASC. The allele frequency of this variant in the Middle Eastern population suggests that it is unlikely to be a fully penetrant cause of severe lipodystrophy. In conclusion, ADH1B appears to play an unexpected, crucial and cell-autonomous role in human adipocyte differentiation by serving as a necessary source of endogenous retinoic acid.

Humans