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Houdou, M. C.

Publications and source records attributed to Houdou, M. C..

2 recordsLinked to original sources

Functional characterization of ATP13A2 variants associated with distinct neurodegenerative disorders

ATP13A2 is a late endolysosomal transporter that exports the polyamines spermine and spermidine from the organellar lumen to the cytosol. Loss-of-function variants in ATP13A2 are causative for Kufor-Rakeb syndrome (KRS, a recessive juvenile-onset parkinsonism with dementia) and have also been identified in early-onset PD (EOPD) and hereditary spastic paraplegia (HSP). Furthermore, candidate pathogenic ATP13A2 variants have been identified in neuronal ceroid lipofuscinosis (NCL; M854R), multiple system atrophy (MSA; Y1020C) and amyotrophic lateral sclerosis (ALS; I411M) suggesting that ATP13A2 may be implicated in a broader range of neurodegenerative disorders. Since the functional consequences of the NCL, MSA, and ALS variants have not yet been examined, we here characterized these ATP13A2 variants in terms of subcellular localization, cellular polyamine uptake, and transport activity. We found that the homozygous NCL-associated M854R variant results in an instable protein with low expression levels, leading to complete loss of ATPase and cellular polyamine uptake activity. The heterozygous MSA-linked Y1020C variant is properly localized and presents only partially decreased ATPase activity without affecting cellular polyamine uptake. The ALS-associated I411M variant is also correctly localized and exhibits a minor effect on cellular polyamine uptake, however, without a significant impact on ATPase activity. Taken together, only the homozygous NCL variant of ATP13A2 causes a complete loss-of-function, validating that ATP13A2 dysfunction is implicated in NCL. The ALS and MSA variants only presented a subtle functional defect, questioning whether these heterozygous variants are pathogenic and whether ATP13A2 dysfunction may cause MSA or ALS.

molecular biology↗

Novel green fluorescent polyamines to analyze ATP13A2 and ATP13A3 activity in the mammalian polyamine transport system

Cells acquire the polyamines putrescine (PUT), spermidine (SPD) and spermine (SPM) via the complementary action of polyamine uptake and synthesis pathways. The endosomal P5B-type ATPases ATP13A2 and ATP13A3 emerge as major determinants of mammalian polyamine uptake. Our biochemical evidence shows that fluorescently labeled polyamines are genuine substrates of ATP13A2. They can be used to measure polyamine uptake in ATP13A2 and ATP13A3-dependent cell models resembling radiolabeled polyamine uptake. We further report that ATP13A3 enables faster and stronger cellular polyamine uptake than ATP13A2. We also compared the uptake of new green-fluorescent PUT, SPD and SPM analogs using different coupling strategies (amide, triazole or isothiocyanate) and fluorophores (symmetrical BODIPY, BODIPY-FL and FITC). ATP13A2 promotes the uptake of various SPD and SPM analogs, whereas ATP13A3 mainly stimulates the uptake of PUT and SPD conjugates. However, the polyamine linker and coupling position on the fluorophore impacts the transport capacity, whereas replacing the fluorophore affects polyamine selectivity. The highest uptake in ATP13A2 or ATP13A3 cells is observed with BODIPY-FL-amide conjugated to SPD, whereas BODIPY-PUT analogs are specifically taken up via ATP13A3. We found that P5B-type ATPase isoforms transport fluorescently labeled polyamine analogs with a distinct structure-activity relationship (SAR) suggesting that isoform-specific polyamine probes can be designed.

biochemistry↗