Poly(ADP-ribosyl)ation refers to the covalent attachment of ADP-ribose to protein, generating branched, long chains of ADP-ribose moieties, known as poly(ADP-ribose) (PAR). Poly(ADP-ribose) polymerase 1 (PARP1) is the main polymerase and acceptor of PAR in response to DNA damage. Excessive intracellular PAR accumulation due to PARP1 activation leads cell death in a pathway known as parthanatos. PAR degradation is mainly controlled by poly(ADP-ribose) glycohydrolase (PARG) and ADP-ribose-acceptor hydrolase 3 (ARH3). Our previous results demonstrated that ARH3 confers protection against hydrogen peroxide (H2O2) exposure, by lowering cytosolic and nuclear PAR levels and preventing apoptosis-inducing factor (AIF) nuclear translocation. We identified a family with an ARH3 gene mutation that resulted in a truncated, inactive protein. The 8-year-old proband exhibited a progressive neurodegeneration phenotype. In addition, parthanatos was observed in neurons of the patient’s deceased sibling, and an older sibling exhibited a mild behavioral phenotype. Consistent with the previous findings, the patient’s fibroblasts and ARH3-deficient mice were more sensitive, respectively, to H2O2 stress and cerebral ischemia/reperfusion-induced PAR accumulation and cell death. Further, PARP1 inhibition alleviated cell death and injury resulting from oxidative stress and ischemia/reperfusion. PARP1 inhibitors may attenuate the progression of neurodegeneration in affected patients with ARH3 deficiency.
Masato Mashimo, Xiangning Bu, Kazumasa Aoyama, Jiro Kato, Hiroko Ishiwata-Endo, Linda A. Stevens, Atsushi Kasamatsu, Lynne A. Wolfe, Camilo Toro, David Adams, Thomas Markello, William A. Gahl, Joel Moss
Title and authors | Publication | Year |
---|---|---|
Regulation of β-cell death by ADP-ribosylhydrolase ARH3 via lipid signaling in insulitis.
Sarkar S, Deiter C, Kyle JE, Guney MA, Sarbaugh D, Yin R, Li X, Cui Y, Ramos-Rodriguez M, Nicora CD, Syed F, Juan-Mateu J, Muralidharan C, Pasquali L, Evans-Molina C, Eizirik DL, Webb-Robertson BM, Burnum-Johnson K, Orr G, Laskin J, Metz TO, Mirmira RG, Sussel L, Ansong C, Nakayasu ES |
Cell communication and signaling : CCS | 2024 |
Novel heterozygous variant of ADPRHL2 causes pathogenic variation in CONDSIAS.
Yan S, Ren J, Su H, Ma J, He W, Cai X, Sun D |
Heliyon | 2024 |
ADP-ribose hydrolases: biological functions and potential therapeutic targets
Wang J, Wang ZQ, Zong W |
Expert Reviews in Molecular Medicine | 2024 |
An ADPRS variant disrupts ARH3 stability and subcellular localization in children with neurodegeneration and respiratory failure
Bannister M, Bray S, Aggarwal A, Billington C Jr, Nguyen HD |
Human Genetics and Genomics Advances | 2024 |
Bag3 Regulates Mitochondrial Function and the Inflammasome Through Canonical and Noncanonical Pathways in the Heart
Wang J, Tomar D, Martin TG, Dubey S, Dubey PK, Song J, Landesberg G, McCormick MG, Myers VD, Merali S, Merali C, Lemster B, McTiernan CF, Khalili K, Madesh M, Cheung JY, Kirk JA, Feldman AM |
JACC: Basic to Translational Science | 2023 |
Expanding the Spectrum of Stress-Induced Childhood-Onset Neurodegeneration with Variable Ataxia and Seizures (CONDSIAS).
Lindskov FO, Karlsson WK, Skovbølling SL, Nielsen EN, Dunø M, Stokholm J, Henriksen OM, Langkilde AR, Nielsen JE |
Cerebellum (London, England) | 2023 |
Regulation of Biomolecular Condensates by Poly(ADP-ribose)
Rhine K, Odeh HM, Shorter J, Myong S |
Chemical Reviews | 2023 |
Regulated necrosis pathways: a potential target for ischemic stroke
Ren K, Pei J, Guo Y, Jiao Y, Xing H, Xie Y, Yang Y, Feng Q, Yang J |
Burns & Trauma | 2023 |
The key players of parthanatos: opportunities for targeting multiple levels in the therapy of parthanatos-based pathogenesis
L Liu, J Li, Y Ke, X Zeng, J Gao, X Ba, R Wang |
Cellular and Molecular Life Sciences | 2022 |
Child-Onset Cerebellar Ataxia Caused by Two Compound Heterozygous Variants in ADPRS Gene: A Case Report
Ma J, Qian Q, Yan S, Dou H, Li C, Sun D |
Frontiers in Genetics | 2022 |
Poly(ADP-ribose) Polymerase 1 Mediates Rab5 Inactivation after DNA Damage
Mashimo M, Morozumi A, Nobeyama A, Kanzaki M, Negi S, Kato J, Moss J, Nomura A, Fujii T |
International journal of molecular sciences | 2022 |
Poly(ADP-ribose) drives condensation of FUS via a transient interaction
Rhine K, Dasovich M, Yoniles J, Badiee M, Skanchy S, Ganser L, Ge Y, Fare CM, Shorter J, Leung AK, Myong S |
Molecular Cell | 2022 |
ARH Family of ADP-Ribose-Acceptor Hydrolases
Ishiwata-Endo H, Kato J, Yamashita S, Chea C, Koike K, Lee DY, Moss J |
Cells | 2022 |
Biological function, mediate cell death pathway and their potential regulated mechanisms for post-mortem muscle tenderization of PARP1: A review.
Li R, Luo R, Luo Y, Hou Y, Wang J, Zhang Q, Chen X, Hu L, Zhou J |
Frontiers in Nutrition | 2022 |
DNA damage and regulation of protein homeostasis
TT Paull |
DNA repair | 2021 |
The 89-kDa PARP1 cleavage fragment serves as a cytoplasmic PAR carrier to induce AIF-mediated apoptosis
M Mashimo, M Onishi, A Uno, A Tanimichi, A Nobeyama, M Mori, S Yamada, S Negi, X Bu, J Kato, J Moss, N Sanada, R Kizu, T Fujii |
The Journal of biological chemistry | 2021 |
The Making and Breaking of Serine-ADP-Ribosylation in the DNA Damage Response
K Schützenhofer, J Rack, I Ahel |
Frontiers in Cell and Developmental Biology | 2021 |
Biallelic ADPRHL2 mutations in complex neuropathy affect ADP ribosylation and DNA damage response
D Beijer, T Agnew, J Rack, E Prokhorova, T Deconinck, B Ceulemans, S Peric, V Rasic, P Jonghe, I Ahel, J Baets |
Life science alliance | 2021 |
Why structure and chain length matter: on the biological significance underlying the structural heterogeneity of poly(ADP-ribose)
J Reber, A Mangerich |
Nucleic Acids Research | 2021 |
Unrestrained poly-ADP-ribosylation provides insights into chromatin regulation and human disease
E Prokhorova, T Agnew, A Wondisford, M Tellier, N Kaminski, D Beijer, J Holder, J Groslambert, M Suskiewicz, K Zhu, J Reber, S Krassnig, L Palazzo, S Murphy, M Nielsen, A Mangerich, D Ahel, J Baets, R OSullivan, I Ahel |
Molecular Cell | 2021 |
Structural and biochemical analysis of human ADP-ribosyl-acceptor hydrolase 3 (ARH3) reveals the basis of metal selectivity and different roles for the two Mg ions
Y Pourfarjam, Z Ma, I Kurinov, J Moss, I Kim |
The Journal of biological chemistry | 2021 |
Stress-induced Childhood Onset Neurodegeneration with Ataxia and Seizures (CONDSIAS) Presenting with Torticollis Attacks: Phenotypic Variability of the Same Mutation in Two Turkish Patients
Ozturk G, Ayaz A, Topcu Y, Akyuz G, Unver O, Akbeyaz IH, Ekinci G, Turkdogan D |
Annals of Indian Academy of Neurology | 2021 |
Mitochondrial and mitochondrial‐independent pathways of myocardial cell death during ischaemia and reperfusion injury
SM Davidson, A Adameová, L Barile, HA CabreraFuentes, A Lazou, P Pagliaro, KO Stensløkken, D GarciaDorado |
Journal of Cellular and Molecular Medicine | 2020 |
Targeting the pathways of regulated necrosis: a potential strategy for alleviation of cardio-cerebrovascular injury
LQ Lu, J Tian, XJ Luo, J Peng |
Cellular and Molecular Life Sciences | 2020 |
(ADP-ribosyl)hydrolases: structure, function, and biology
JG Rack, L Palazzo, I Ahel |
Genes & development | 2020 |
NAD metabolism in aging and cancer
JW Kincaid, NA Berger |
Experimental biology and medicine (Maywood, N.J.) | 2020 |
Pathogenic ARH3 mutations result in ADP-ribose chromatin scars during DNA strand break repair
H Hanzlikova, E Prokhorova, K Krejcikova, Z Cihlarova, I Kalasova, J Kubovciak, J Sachova, R Hailstone, J Brazina, S Ghosh, S Cirak, JG Gleeson, I Ahel, KW Caldecott |
Nature Communications | 2020 |
Regulation of Glucose Metabolism by NAD+ and ADP-Ribosylation
Hopp, Grüter, Hottiger |
Cells | 2019 |