Deciphering the role of the AT-rich interaction domain and the HMG-box domain of ARID-HMG proteins of Arabidopsis thaliana

被引:11
|
作者
Roy, Adrita [1 ]
Dutta, Arkajyoti [4 ]
Roy, Dipan [1 ]
Ganguly, Payel [1 ]
Ghosh, Ritesh [2 ]
Kar, Rajiv K. [3 ]
Bhunia, Anirban [3 ]
Mukhobadhyay, Jayanta [4 ]
Chaudhuri, Shubho [1 ]
机构
[1] Bose Inst, Div Plant Biol, Kolkata 700054, India
[2] Yeungnam Univ, Sch Biotechnol, Gyongsan 712749, South Korea
[3] Bose Inst, Dept Biophys, Kolkata 700054, India
[4] Bose Inst, Dept Chem, Kolkata 700054, India
关键词
HMG-box protein; ARID-HMG; Arabidopsis thaliana; DNA binding; DNA bending; DNA supercoiling; DNA-BINDING PROTEINS; HISTONE H1; ARCHITECTURAL ELEMENTS; MAIZE HMGA; MOBILITY; NUCLEOSOME; FAMILY; MODULATE; ASSOCIATION; NETWORK;
D O I
10.1007/s11103-016-0519-y
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
ARID-HMG DNA-binding proteins represent a novel group of HMG-box containing protein family where the AT-rich interaction domain (ARID) is fused with the HMG-box domain in a single polypeptide chain. ARID-HMG proteins are highly plant specific with homologs found both in flowering plants as well as in moss such as Physcomitrella. The expression of these proteins is ubiquitous in plant tissues and primarily localises in the cell nucleus. HMGB proteins are involved in several nuclear processes, but the role of ARID-HMG proteins in plants remains poorly explored. Here, we performed DNA-protein interaction studies with Arabidopsis ARID-HMG protein HMGB11 (At1g55650) to understand the functionality of this protein and its individual domains. DNA binding assays revealed that AtHMGB11 can bind double-stranded DNA with a weaker affinity (K-d = 475 +/- 17.9 nM) compared to Arabidopsis HMGB1 protein (K-d = 39.8 +/- 2.68 nM). AtHMGB11 also prefers AT-rich DNA as a substrate and shows structural bias for supercoiled DNA. Molecular docking of the DNA-AtHMGB11 complex indicated that the protein interacts with the DNA major groove, mainly through its ARID domain and the junction region connecting the ARID and the HMG-box domain. Also, predicted by the docking model, mutation of Lys(85) from the ARID domain and Arg(199) & Lys(202) from the junction region affects the DNA binding affinity of AtHMGB11. In addition, AtHMGB11 and its truncated form containing the HMG-box domain can not only promote DNA mini-circle formation but are also capable of inducing negative supercoils into relaxed plasmid DNA suggesting the involvement of this protein in several nuclear events. Overall, the study signifies that both the ARID and the HMG-box domain contribute to the optimal functioning of ARID-HMG protein in vivo.
引用
收藏
页码:371 / 388
页数:18
相关论文
共 46 条
  • [31] Molecular and pathological landscape of the AT-rich interaction domain 1A (ARID1A) mutation in hepatocellular carcinoma
    Li, Junfeng
    Fu, Yuxia
    Zhang, Hongchuan
    Ma, Hong
    PATHOLOGY RESEARCH AND PRACTICE, 2025, 266
  • [32] Role of AT-rich interaction domain 1A in gastric cancer immunotherapy: Preclinical and clinical perspectives
    Zhang, Xuemei
    Zhang, Youzhi
    Zhang, Qiaoyun
    Lu, Mengyao
    Chen, Yuan
    Zhang, Xiaoyu
    Zhang, Peng
    JOURNAL OF CELLULAR AND MOLECULAR MEDICINE, 2024, 28 (05)
  • [33] Solution NMR structure of the ARID domain of human AT-rich interactive domain-containing protein 3A: A human cancer protein interaction network target
    Liu, Gaohua
    Huang, Yuanpeng J.
    Xiao, Rong
    Wang, Dongyan
    Acton, Thomas B.
    Montelione, Gaetano T.
    PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2010, 78 (09) : 2170 - 2175
  • [34] 1H, 13C and 15N resonance assignments of the AT-rich interaction domain (ARID) of Jumonji
    Kusunoki, H
    Hasegawa, T
    Komatsu, C
    Takeuchi, T
    Kohno, T
    JOURNAL OF BIOMOLECULAR NMR, 2005, 33 (01) : 74 - 74
  • [35] Knockdown of AT-rich interaction domain (ARID) 5B gene expression induced AMPKα2 activation in cardiac myocytes
    Hirose-Yotsuya, Lisa
    Okamoto, Fumio
    Yamakawa, Takahiro
    Whitson, Robert H.
    Fujita-Yamaguchi, Yoko
    Itakura, Keiichi
    BIOSCIENCE TRENDS, 2015, 9 (06) : 377 - 385
  • [36] 1H, 13C and 15N Resonance Assignments of the AT-Rich Interaction Domain (ARID) of Jumonji
    Hideki Kusunoki
    Tsukasa Hasegawa
    Chieko Komatsu
    Takashi Takeuchi
    Toshiyuki Kohno
    Journal of Biomolecular NMR, 2005, 33 : 74 - 74
  • [37] Basic and acidic regions flanking the HMG-box domain of maize HMGB1 and HMGB5 modulate the stimulatory effect on the DNA binding of transcription factor Dof2
    Grasser, Marion
    Christensen, Julia M.
    Peterhaensel, Christoph
    Grasser, Klaus D.
    BIOCHEMISTRY, 2007, 46 (21) : 6375 - 6382
  • [38] Epigenetic regulation of breast cancer treatment response by a chromatin remodelling complex protein AT-Rich Interaction Domain 1A, ARID1A
    Nagarajan, Sankari
    Rao, Shalini V.
    Chernukhin, Igor
    Sutton, Joseph
    Cheeseman, Danya
    Dunn, Shanade
    Papachristou, Evangelia K.
    Prada, Jose-Enrique Gonzalez
    Couturier, Dominique-Laurent
    Kumar, Sanjeev Srinivas
    Kishore, Kamal
    Chilamakhuri, Chandra Sekhar Reddy
    Glont, Silvia Elena
    Goode, Emily Archer
    Brodie, Cara
    Guppy, Naomi
    Natrajan, Rachael
    Bruna, Alejandra
    Caldas, Carlos
    Russell, Alasdair
    Siersbaek, Rasmus
    Yusa, Kosuke
    Carroll, Jason S.
    BREAST CANCER RESEARCH AND TREATMENT, 2020, 180 (02) : 539 - 539
  • [39] Structure and DNA-binding sites of the SWI1 AT-rich interaction domain (ARID) suggest determinants for sequence-specific DNA recognition
    Kim, S
    Zhang, ZM
    Upchurch, S
    Isern, N
    Chen, Y
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (16) : 16670 - 16676
  • [40] Expression analysis of genes encoding malectin-like domain (MLD)- and leucine-rich repeat (LRR)- containing proteins in Arabidopsis thaliana
    Sultana, Mst Momtaz
    Hachiya, Takushi
    Dutta, Amit Kumar
    Nishimura, Kohji
    Suzuki, Takamasa
    Tanaka, Ai
    Nakagawa, Tsuyoshi
    BIOSCIENCE BIOTECHNOLOGY AND BIOCHEMISTRY, 2020, 84 (01) : 154 - 158