Post-translational modifications: Regulators of neurodegenerative proteinopathies

被引:61
作者
Gupta, Rohan [1 ]
Sahu, Mehar [1 ]
Srivastava, Devesh [1 ]
Tiwari, Swati [1 ]
Ambasta, Rashmi K. [1 ]
Kumar, Pravir [1 ]
机构
[1] Delhi Technol Univ, Dept Biotechnol, Mol Neurosci & Funct Genom Lab, Delhi 110042, India
关键词
Post-translational modifications; Neurodegenerative disease; Proteinopathies; Protein aggregation; UNFOLDED PROTEIN RESPONSE; MITOCHONDRIAL COMPLEX-I; UBIQUITIN-PROTEASOME SYSTEM; ENDOPLASMIC-RETICULUM STRESS; SITE-SPECIFIC NITRATION; GLYCATION END-PRODUCTS; O-GLCNAC-MODIFICATION; ALPHA-SYNUCLEIN; ALZHEIMERS-DISEASE; OXIDATIVE STRESS;
D O I
10.1016/j.arr.2021.101336
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
causes neuronal dysfunction. Post-translational modification plays many roles in protein turnover rate, accumulation of aggregate and can also help in the degradation of disease-causing toxic metabolites. PTMs such as acetylation, glycosylation, phosphorylation, ubiquitination, palmitoylation, SUMOylation, nitration, oxidation, and many others regulate protein homeostasis, which includes protein structure, functions and aggregation propensity. Different studies demonstrated the involvement of PTMs in the regulation of signaling cascades such as PI3K/Akt/GSK3 beta, MAPK cascade, AMPK pathway, and Wnt signaling pathway in the pathogenesis of NDDs. Further, mounting evidence suggests that targeting different PTMs with small chemical molecules, which acts as an inhibitor or activator, reverse misfolded protein accumulation and thus enhances the neuroprotection. Herein, we briefly discuss the protein aggregation and various domain structures of different proteins involved in the NDDs, indicating critical amino acid residues where PTMs occur. We also describe the implementation and involvement of various PTMs on signaling cascade and cellular processes in NDDs. Lastly, we implement our current understanding of the therapeutic importance of PTMs in neurodegeneration, along with emerging One of the hallmark features in the neurodegenerative disorders (NDDs) is the accumulation of aggregated and/ or non-functional protein in the cellular milieu. Post-translational modifications (PTMs) are an essential regulator of non-functional protein aggregation in the pathogenesis of NDDs. Any alteration in the post-translational mechanism and the protein quality control system, for instance, molecular chaperone, ubiquitin-proteasome system, autophagy-lysosomal degradation pathway, enhances the accumulation of misfolded protein, which Abbreviations: PTMs, Post-translational modifications; NDDs, Neurodegenerative diseases; AD, Alzheimer's disease; PD, Parkinson's disease; ALS, Amyotrophic lateral sclerosis; HD, Huntington's disease; TDP-43, Transactivation response DNA binding protein-43; A beta, beta-amyloid; NFTs, Neurofibrils tangles; SNpc, Substantia nigra pars compacta; polyQ, Polyglutamine; LBs, Lewy bodies; htt, Huntingtin protein; SOD1, Superoxide dismutase 1; UPS, Ubiquitin-proteasome system; CMA, Chaperone mediated autophagy; HSPs, Heat shock proteins; PSEN2, Presenilin-2; IT15, Interesting transcript 15; TARDBP, TAR DNA Binding Protein; NO, Nitric oxide; CK1, Casein kinase 1; GSK-3 beta, Glycogen synthase kinase 3 beta; PKA, Protein kinase A; CDK5, Cyclin-dependent kinase 5; DYRK1A, Dual Specificity Tyrosine Phosphorylation Regulated Kinase 1A; REP, Repressor element of PARKIN; MTS, Mitochondrial targeting sequence; TM, Transmembrane; FUS, Fused in sarcoma; NLS, Nuclear localization sequence; RRMs, RNA recognition motif; NES, Nuclear export sequence; ER, Endoplasmic reticulum; UPR, Unfolded protein response; IRE1 alpha, Inositol-requiring enzyme 1 alpha; PERK, Protein kinase R like endoplasmic reticulum kinase; ATF6 alpha, Activating transcription factor 6 alpha; DR5, Death receptor 5; elF2 alpha, Eukaryotic initiation factor 2 alpha; XBP1, X-box binding protein 1; ASK1-JNK, apoptosis signal-regulating kinase 1/ c-Jun N-terminal kinases; TRAF2, TNF receptor-associated factor 2; PAD4, Protein arginase deaminase 4; SP1, Specificity protein 1; SP2, Specificity protein 2; PARP16, poly ADP ribose polymerase 16; Umf1, ubiquitin fold modifier 1; CHOP, C/EBP homologous protein; ERAD, endoplasmic reticulum-associated degradation; APP, Amyloid precursor protein; PSEN1, Presenilin-1; BACE1, Beta-secretase 1; BiP, Binding immunoglobulin protein; PARKIN, E3 ubiquitin-protein ligase parkin; PINK1, PTEN-induced kinase 1; PDI, Protein disulfide isomerase; GADD34, Growth arrest and DNA damage-inducible protein; DJ1, Protein deglycase; ATFS1, Cyclic AMP-dependent transcription factor;
引用
收藏
页数:32
相关论文
共 402 条
  • [11] PINK1 regulates histone H3 trimethylation and gene expression by interaction with the polycomb protein EED/WAIT1 (Retraction of vol 110, pg 14729, 2013)
    Berthier, Arnaud
    Jimenez-Sainz, Judit
    Pulido, Rafael
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (45) : 16225 - 16225
  • [12] Short Telomeres are Sufficient to Cause the Degenerative Defects Associated with Aging
    Armanios, Mary
    Alder, Jonathan K.
    Parry, Erin M.
    Karim, Baktiar
    Strong, Margaret A.
    Greider, Carol W.
    [J]. AMERICAN JOURNAL OF HUMAN GENETICS, 2009, 85 (06) : 823 - 832
  • [13] Protein homeostasis and molecular chaperones in aging
    Arslan, Mehmet Alper
    Csermely, Peter
    Soti, Csaba
    [J]. BIOGERONTOLOGY, 2006, 7 (5-6) : 383 - 389
  • [14] Cyclin-dependent kinase 5 phosphorylates and induces the degradation of ataxin-2
    Asada, Akiko
    Yamazaki, Rena
    Kino, Yoshihiro
    Saito, Taro
    Kimura, Taeko
    Miyake, Mao
    Hasegawa, Masato
    Nukina, Nobuyuki
    Hisanaga, Shin-ichi
    [J]. NEUROSCIENCE LETTERS, 2014, 563 : 112 - 117
  • [15] The Bewildering Effect of AMPK Activators in Alzheimer's Disease: Review of the Current Evidence
    Assefa, Brhane Teklebrhan
    Tafere, Gebrehiwot Gebremedhin
    Wondafrash, Dawit Zewdu
    Gidey, Meles Tekie
    [J]. BIOMED RESEARCH INTERNATIONAL, 2020, 2020
  • [16] Antioxidant peroxiredoxin 6 protein rescues toxicity due to oxidative stress and cellular hypoxia in vitro, and attenuates prion-related pathology in vivo
    Asuni, Ayodeji A.
    Guridi, Maitea
    Sanchez, Sandrine
    Sadowski, Martin J.
    [J]. NEUROCHEMISTRY INTERNATIONAL, 2015, 90 : 152 - 165
  • [17] Cell stress induces TDP-43 pathological changes associated with ERK1/2 dysfunction: implications in ALS
    Ayala, Victoria
    Belen Granado-Serrano, Ana
    Cacabelos, Daniel
    Naudi, Alba
    Ilieva, Ekaterina V.
    Boada, Jordi
    Caraballo-Miralles, Victor
    Llado, Jeronia
    Ferrer, Isidro
    Pamplona, Reinald
    Portero-Otin, Manuel
    [J]. ACTA NEUROPATHOLOGICA, 2011, 122 (03) : 259 - 270
  • [18] PS1 activates PI3K thus inhibiting GSK-3 activity and tau overphosphorylation: effects of FAD mutations
    Baki, L
    Shioi, J
    Wen, P
    Shao, ZP
    Schwarzman, A
    Gama-Sosa, M
    Neve, R
    Robakis, NK
    [J]. EMBO JOURNAL, 2004, 23 (13) : 2586 - 2596
  • [19] Mechanisms of SOD1 regulation by post-translational modifications
    Banks, C. J.
    Andersen, J. L.
    [J]. REDOX BIOLOGY, 2019, 26
  • [20] BACE1 SUMOylation increases its stability and escalates the protease activity in Alzheimer's disease
    Bao, Jian
    Qin, Min
    Mahaman, Yacoubou Abdoul Razak
    Zhang, Bin
    Huang, Fang
    Zeng, Kuan
    Xia, Yiyuan
    Ke, Dan
    Wang, Qun
    Liu, Rong
    Wang, Jian-Zhi
    Ye, Keqiang
    Wang, Xiaochuan
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2018, 115 (15) : 3954 - 3959