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Castino, B.

Publications and source records attributed to Castino, B..

2 recordsLinked to original sources

Temporal Dynamics of Kidney Mitochondrial Dysfunction in Type 2 Diabetes: Analysis of the Goto-Kakizaki Model.

Type 2 diabetes mellitus (T2DM) is a major cause of diabetic kidney disease (DKD), a complication driven by chronic hyperglycemia, oxidative stress, and inflammation. Mitochondrial dysfunction has been recognized as a central feature of DKD, but the temporal relationship between mitochondrial alterations, mitophagy, and inflammatory responses remains unclear. Using the non-obese Goto-Kakizaki (GK) rat, a spontaneous model of T2DM, we examined renal mitochondrial changes at 21, 60, and 120 days. Histology revealed a trend toward increased glycation product deposition, more evident at 60 days. Cytochrome C and OPA-1 expression indicated early mitochondrial adaptation through enhanced respiratory activity and hyperfusion, while reduced PGC1- and PINK suggested impaired biogenesis and mitophagy. By 120 days, PGC1- and PINK increased, likely reflecting delayed, insufficient compensation, coinciding with mitochondrial depolarization. Cytokine analysis revealed a biphasic inflammatory profile: IL-18 and CXCL1 were sharply elevated at 21 days, IL-1{beta} remained stable, and IL-10 was elevated at 21 and 60 days, indicating early pro-inflammatory activation followed by anti-inflammatory modulation. These findings suggest that renal mitochondrial dysfunction in GK rats evolves from an adaptive state to late-stage failure, with inflammation occurring as transient peaks rather than a persistent process. The period between 21 and 60 days emerges as a critical therapeutic window in which strategies to preserve mitochondrial quality control and modulate inflammasome-related responses may be most effective.

cell biology↗

Isoflavone treatment attenuates cardiovascular-kidney-metabolic (CKM) syndrome symptoms in an experimental model of ovariectomized rats.

Cardiovascular-kidney-metabolic (CKM) syndrome represents an integrated spectrum of obesity, type 2 diabetes mellitus, cardiovascular disease, and chronic kidney disease, driven by shared metabolic, inflammatory, and fibrotic mechanisms. Menopause-related estrogen deficiency exacerbates these disturbances, increasing susceptibility to metabolic syndrome and renal injury. This study investigated whether dietary supplementation with soy isoflavones attenuates obesity-associated kidney injury in ovariectomized rats exposed to a high-fat, high-caloric diet. Female Wistar rats underwent bilateral ovariectomy and were assigned to control diet, hipercaloric diet (DH), or DH supplemented with isoflavones (DH+ISO). Metabolic, biochemical, oxidative stress, histopathological, and inflammatory parameters were evaluated over 120 days. The DH diet induced weight gain, hypertension, dyslipidemia, hyperglycemia, impaired renal function, increased oxidative stress, and tubulointerstitial injury, consistent with a CKM phenotype. Isoflavone supplementation did not prevent diet-induced weight gain but attenuated systolic blood pressure elevation and improved lipid and glycemic profiles. Renal function was partially preserved in DH+ISO rats, as evidenced by lower plasma creatinine levels, improved creatinine clearance, reduced urea levels, and decreased urinary peroxide excretion compared with DH animals. Histopathological analysis revealed persistent tubular injury in both DH groups, although inflammatory and oxidative markers were attenuated in isoflavone-treated rats. Immunohistochemistry demonstrated reduced renal IL-6 expression in the DH+ISO group, accompanied by trends toward decreased macrophage infiltration and IL-1{beta} expression. Collectively, these findings indicate that soy isoflavones mitigate metabolic, inflammatory, and oxidative pathways implicated in obesity-related kidney injury in a postmenopausal experimental model. Isoflavone supplementation may represent a complementary therapeutic strategy for attenuating CKM-related renal damage associated with modern diets and estrogen deficiency.

pathology↗