Search bioRxiv⌕ Search

Biology subjects

Curry, J. N.

Publications and source records attributed to Curry, J. N..

2 recordsLinked to original sources

Differential Assembly of Native ENaC Complexes Across Mouse Epithelial Tissues

The epithelial sodium channel (ENaC) governs sodium and fluid absorption in the lung, kidney, and colon, but the organization of native ENaC complexes has remained difficult to define because of their low abundance and biochemical instability. To enable direct analysis of native assemblies, we generated a knock-in mouse in which the endogenous {gamma} subunit is fused at its C terminus to mVenus, a 3C protease cleavage site, and a 3xFLAG epitope (ENaC{gamma}-VF). The tag preserves physiological ENaC function, as ENaC{gamma}-VF mice display normal electrolyte handling, benzamil affinity, and amiloride-sensitive Na:K responses indistinguishable from wild-type animals. Using fluorescence-detection size-exclusion chromatography and single-molecule pull-down, we directly monitor intact native ENaC complexes from lung, kidney, and colon and uncover marked tissue-to-tissue differences in channel abundance and apparent complex size. Dual-color analysis with a fluorescent Fab against ENaC marks fully assembled {beta}{gamma} channels, while {gamma}-based fluorescence reports the broader population of {gamma}-containing assemblies. In combination, the ENaC{gamma}-VF line provides a biochemical anchor for identifying regulatory and trafficking proteins that co-purify with native ENaC complexes. These data show that ENaC architecture in vivo is heterogeneous, and establish ENaC{gamma}-VF mice as a platform for dissecting how epithelial environments shape ENaC assembly, composition, and regulation.

biochemistry↗

Kidney kallikrein-1 contributes to cleavage of gamma-ENaC in vivo

The epithelial sodium channel (ENaC) is essential for sodium reabsorption and potassium homeostasis in the distal nephron, where its activity is controlled by mineralocorticoid signaling and downstream proteolytic processing of channel subunits. While cleavage of the {gamma}-ENaC subunit has been implicated in aldosterone-mediated sodium transport, the identity of mineralocorticoid receptor (MR)-regulated proteases responsible for this process remains uncertain. Here, we investigated the role of kallikrein-1 (encoded by Klk1), a serine protease expressed in the connecting tubule and cortical collecting duct (CNT/CCD), as a mediator of ENaC activation. Using CRISPR/Cas9, we generated a conditional Klk1-floxed allele and established mice with CNT/CCD-specific deletion of Klk1 by crossing with Calb1-Cre (CNT-Klk1-/-). On a low sodium, high potassium diet, CNT-Klk1-/- mice exhibited [~]85% less renal kallikrein-1 expression, yet maintained normal serum electrolytes, urinary potassium excretion, and aldosterone responses. Western blot analysis revealed significantly less cleavage of {gamma}-ENaC and -ENaC in CNT-Klk1-/- kidneys, accompanied by more total NCC abundance. Despite impaired ENaC proteolysis, amiloride-sensitive sodium excretion was preserved, indicating intact ENaC function. These findings identify renal kallikrein-1 as a protease that contributes to ENaC subunit processing in vivo. However, the absence of overt sodium or potassium handling defects in CNT-Klk1-/- mice suggests that kallikrein-1 deficiency is not sufficient to disrupt overall ENaC function, likely due to compensatory mechanisms from redundant proteolytic or non-proteolytic pathways. Together, our results refine the role of kallikrein-1 as a modulator, rather than a sole determinant, of ENaC activation and highlight the complexity of aldosterone-dependent sodium transport in the distal nephron. New & NoteworthyUsing a novel connecting tubule / cortical collecting duct specific kallikrein-1 knockout model, we show that {gamma}- and -ENaC cleavage is impaired by loss of renal kallikrein-1 without major disturbances in sodium or potassium handling. These findings highlight redundancy among ENaC regulatory pathways and suggest that proteolytic cleavage, while biochemically evident, may not be an accurate marker of ENaC-mediated sodium transport under physiological stress.

physiology↗