Driving Innovation in Renal Therapeutics by Harnessing Novel Molecular Pathways of Renal Injury in Nephropathic Cystinosis
openNIDDK - National Institute of Diabetes and Digestive and Kidney Diseases
ABSTRACT. Nephropathic cystinosis (NC) is a rare, genetic disorder caused by mutations in the cystinosin
(CTNS) gene, resulting in accumulation of cysteine in lysosomes in all tissues and organ systems. Despite intake
of cysteine depletion therapy (cystagon) soon after birth, the kidney alone is uniquely affected by water and
electrolyte handling deficits as part of the renal Fanconi syndrome and progressive kidney damage and renal
failure by the first decade of life, extendable to the second decade with cystagon. Current treatments in NC focus
on managing symptoms rather than addressing the underlying cause of kidney injury, leaving a substantial gap
for innovative therapeutics. We have identified that apart from cystine accumulation, other key molecular
perturbations in the ATP6V0A1 gene impacts renal tubular integrity and function, could offers rational drug
design opportunities to mitigate kidney injury in NC.
We present a collaborative multi-PI project from three global key opinion leaders (Sarwal, Callan, Keyes), hailing
from three world-class academic institutions (UCSF, UU and DCU), utilizing the Tripartitie (or triple) RO1
mechanism where each PI is funded by their own country- the USA, Republic of Ireland and Northern Ireland.
The PI’s leverage their strong preliminary data in NC and their combined expertise in translational nephrology,
molecular medicine, cellular imaging, robust validation in pre-clinical models of cystinosis, and drug development
expertise, to create innovative treatments targeting ATP6V0A1 for mitigating the kidney damage in nephropathic
cystinosis. We will explore the interaction between CTNS and ATP6V0A1, which has not previously been
characterized, conducting multi-modal imaging, pH and mechanistic studies of disease-relevant mutations and
protein domains in their endogenous context (Aim 1). We will improve the bioavailability of ATX (nano-ATX),
as it is a compound that restores ATP6V0A1 function, and create a new drug that combines delivery of cystagon
and nano-ATX (nanoCysATX), to most effectively treat and limit kidney injury in NC (Aim 2). The new nano-ATX
and nano-CysATX formulations will be further evaluated in pre-clinical organ-on-a-chip and a CTNS-/- rodent
model (Aim 3). As we have shown that ATX reverses dysfunctional mitochondria-renal tubular-lysosme crosstalk
and oxidative stress, the impact of this drug development initiative may have far reaching implications for other
(non-NC) causes of chronic kidney disease (CKD). Thus, the clinical impact of developing a reno-protective drug
for NC has far reaching impact. As NC is an orphan disease—affecting fewer than 200,000 people in the U.S.—
NC qualifies for regulatory incentives such as market exclusivity and fast-track approval pathways that would be
critically needed to get ATX to help patients with NC and other causes of CKD.
Up to $737K
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