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Published on: July 17, 2018
Chloride channel accessory 1 integrates chloride channel activity and mTORC1 in aging-related kidney injury
Hak Joo Lee1, Andrew Donati1, Denis Feliers1
1Department of Medicine, Center for Renal Precision Medicine, University of Texas Health, San Antonio, TX, USA.
Abstract:
The mechanism of kidney injury in aging are not well understood. In order to identify hitherto unknown pathways of aging-related kidney injury, we performed RNA-Seq on kidney extracts of young and aged mice. Expression of chloride (Cl) channel accessory 1 (CLCA1) mRNA and protein was increased in the kidneys of aged mice. Immunostaining showed a marked increase in CLCLA1 expression in the proximal tubules of the kidney from aged mice. Increased kidney CLCA1 gene expression also correlated with aging in marmosets and in a human cohort. In aging mice, increased renal cortical CLCA1 content was associated with hydrogen sulfide (H2 S) deficiency, which was ameliorated by administering sodium hydrosulfide (NaHS), a source of H2 S. In order to study whether increased CLCA1 expression leads to injury phenotype and the mechanisms involved, stable transfection of proximal tubule epithelial cells overexpressing human CLCA1 (hCLCA1) was performed. Overexpression of hCLCA1 augmented Cl- current via the Ca++ -dependent Cl- channel TMEM16A (anoctamin-1) by patch-clamp studies. hCLCA1 overexpression also increased the expression of fibronectin, a matrix protein, and induced the senescence-associated secretory phenotype (SASP). Mechanistic studies underlying these changes showed that hCLCA1 overexpression leads to inhibition of AMPK activity and stimulation of mTORC1 as cellular signaling determinants of injury. Both TMEM16A inhibitor and NaHS reversed these signaling events and prevented changes in fibronectin and SASP. We conclude that CLCA1-TMEM16A-Cl- current pathway is a novel mediator of kidney injury in aging that is regulated by endogenous H2 S.
Insights
Aging kidneys show increased chloride channel accessory 1 (CLCA1), linked to injury. Restoring hydrogen sulfide (H2S) levels reversed this damage, revealing a new pathway in kidney aging.
Area of Science:
- Nephrology
- Molecular Biology
- Aging Research
Background:
- Mechanisms underlying age-related kidney injury remain unclear.
- Identifying novel pathways is crucial for therapeutic interventions.
- Chloride channel accessory 1 (CLCA1) role in kidney aging is unexplored.
Purpose of the Study:
- To investigate novel pathways of aging-related kidney injury.
- To identify the role of CLCA1 in kidney aging and injury.
- To elucidate the regulatory mechanisms of CLCA1 in the aging kidney.
Main Methods:
- RNA sequencing (RNA-Seq) on young and aged mouse kidneys.
- Immunostaining for CLCA1 expression in mouse, marmoset, and human kidney tissues.
- In vitro studies using proximal tubule epithelial cells overexpressing human CLCA1 (hCLCA1).
- Patch-clamp electrophysiology, Western blotting, and biochemical assays.
Main Results:
- CLCA1 expression significantly increased in aged kidneys across species.
- hCLCA1 overexpression augmented chloride currents via TMEM16A, increased fibronectin, and induced SASP.
- hCLCA1 overexpression inhibited AMPK and stimulated mTORC1 signaling.
- Hydrogen sulfide (H2S) deficiency correlated with increased CLCA1; NaHS administration ameliorated injury phenotypes.
Conclusions:
- The CLCA1-TMEM16A-Cl- current pathway is a novel mediator of kidney injury in aging.
- Endogenous hydrogen sulfide (H2S) regulates this pathway.
- Targeting CLCA1 or modulating H2S levels may offer therapeutic strategies for aging kidneys.
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