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Evidence suggests that autophagy promotes the development of cellular senescence. Because cellular senescence contributes to renal aging and promotes the progression from AKI to CKD, we investigated the potential effect of tubular autophagy on senescence induction. Compared with kidneys from control mice, kidneys from mice with conditional deletion of autophagy-related 5 (Atg5) for selective ablation of autophagy in proximal tubular S3 segments (Atg5(Δ) (flox/) (Δ) (flox)) presented with significantly less tubular senescence, reduced interstitial fibrosis, and superior renal function 30 days after ischemia/reperfusion injury. To correlate this long-term outcome with differences in the early injury process, kidneys were analyzed 2 hours and 3 days after reperfusion. Notably, compared with kidneys of control mice, Atg5(Δ) (flox/) (Δ) (flox) kidneys showed more cell death in outer medullary S3 segments at 2 hours but less tubular damage and inflammation at day 3. These data suggest that the lack of autophagy prevents early survival mechanisms in severely damaged tubular cells. However, if such compromised cells persist, then they may lead to maladaptive repair and proinflammatory changes, thereby facilitating the development of a senescent phenotype and CKD.
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http://dx.doi.org/10.1681/ASN.2014111059 | DOI Listing |
Diabetes Obes Metab
September 2025
Department of Pharmacology, Kagawa University, Kagawa, Japan.
Aim: Sodium-glucose cotransporter 2 (SGLT2) inhibitors consistently demonstrate renal protection against progressive kidney disease. We hypothesised that SGLT2 inhibition reduces blood glucose levels in peri-proximal tubular capillaries by limiting reabsorption from the tubular filtrate, thereby safeguarding the renal microvasculature from hyperglycaemic stress.
Materials And Methods: In anaesthetised streptozotocin-induced type 1 and Otsuka-Long Evans fatty (OLETF) type 2 diabetic rats, we measured the arterial-to-renal venous glucose ratio (RV/A) to evaluate the effects of canagliflozin, a SGLT2 inhibitor.
PLoS One
September 2025
Department of Urology, Kanazawa Medical University, Kahoku, Ishikawa, Japan.
Calcium oxalate (CaOx) stones are prevalent in urinary tract stone disease. While their formation can be induced in rats by administering ethylene glycol and vitamin D, the initial nucleation and formation processes are unclear. Here, we aimed to determine where CaOx crystals initially form, examine the associated histological and morphological changes, and clarify the genes whose expression varies at those sites and their function.
View Article and Find Full Text PDFHistol Histopathol
September 2025
Department of Pharmacy, Xijing Hospital, Fourth Military Medical University, Xi'an, Shaanxi Province, China.
Brazilin, a natural homoisoflavonoid, is the primary bioactive ingredient derived from the bark and heartwood of L. It has been proven to exhibit multiple biological activities and therapeutic potential in chronic degenerative diseases, fibrotic disorders, inflammatory diseases, and cancers. However, whether it is involved in regulating the pathological process of acute kidney injury (AKI) is not fully understood.
View Article and Find Full Text PDFPLoS One
September 2025
Department of Nephrology, Chungnam National University, Daejeon, Republic of Korea.
Diabetic kidney disease (DKD) involves oxidative stress-driven damage to glomeruli (Gloms) and proximal convoluted tubules (PCT). NAD(P)H: quinone oxidoreductase 1 (NQO1) regulates redox balance, but its compartment-specific role remains unclear. Streptozotocin (STZ)-induced hyperglycemia increased albuminuria and foot process effacement, with NQO1 KO (NKO) mice exhibiting greater podocyte injury than WT, indicating exacerbated glomerular damage.
View Article and Find Full Text PDFFront Cell Dev Biol
August 2025
Laboratory of Rheumatology, Bambino Gesù Children's Hospital, IRCCS, Rome, Italy.
Introduction: Nephropathic cystinosis is a rare genetic disorder characterized by cystine accumulation in lysosomes that causes early renal dysfunction and progressive chronic kidney disease. Although several metabolic pathways, including oxidative stress and inflammation, have been implicated in the progression of renal parenchyma damage, the precise mechanisms driving its progression are not fully understood. Recent studies suggest that epigenetic modifications, particularly DNA methylation (DNAm), play a critical role in the development of chronic kidney disease.
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