The N-terminus of obscurin is flexible in solution

被引:0
|
作者
Mauriello, Gianna E. [1 ]
Moncure, Grace E. [1 ]
Nowzari, Roujon A. [1 ]
Miller, Callie J. [2 ]
Wright, Nathan T. [1 ]
机构
[1] James Madison Univ, Dept Chem & Biochem, 901 Carrier Dr, Harrisonburg, VA 22807 USA
[2] James Madison Univ, Dept Engn, Harrisonburg, VA 22807 USA
基金
美国国家科学基金会;
关键词
domain flexibility; knots; MD; NMR; obscurin; SAXS; M-BAND; STRUCTURE ELASTICITY; GIANT OBSCURINS; TITIN; BREAST; PROTEIN; GENE; SKELETAL; ISOFORM; FORCE;
D O I
10.1002/prot.26442
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
The N-terminal half of the giant cytoskeletal protein obscurin is comprised of more than 50 Ig-like domains, arranged in tandem. Domains 18-51 are connected to each other through short 5-residue linkers, and this arrangement has been previously shown to form a semi-flexible rod in solution. Domains 1-18 generally have slightly longer similar to 7 residue interdomain linkers, and the multidomain structure and motion conferred by this kind of linker is understudied. Here, we use NMR, SAXS, and MD to show that these longer linkers are associated with significantly more domain/ domain flexibility, with the resulting multidomain structure being moderately compact. Further examination of the relationship between interdomain flexibility and linker length shows there is a 5 residue "sweet spot" linker length that results in dual-domain systems being extended, and conversely that both longer or shorter linkers result in a less extended structure. This detailed knowledge of the obscurin N terminus structure and flexibility allowed for mathematical modeling of domains 1-18, which suggests that this region likely forms tangles if left alone in solution. Given how infrequently protein tangles occur in nature, and given the pathological outcomes that occur when tangles do arise, our data suggest that obscurin is likely either significantly scaffolded or else externally extended in the cell.
引用
收藏
页码:485 / 496
页数:12
相关论文
共 50 条
  • [31] The Disordered MAX N-terminus Modulates DNA Binding of the Transcription Factor MYC:MAX
    Schuetz, Stefan
    Bergsdorf, Christian
    Goretzki, Benedikt
    Lingel, Andreas
    Renatus, Martin
    Gossert, Alvar D.
    Jahnke, Wolfgang
    JOURNAL OF MOLECULAR BIOLOGY, 2022, 434 (22)
  • [32] Mechanism of heat-induced gelation for ovalbumin and its N-terminus cleaved form
    Hiroi, Takashi
    Okazumi, Yuya
    Littrell, Ken C.
    Narita, Yuri
    Tanaka, Naoki
    Shibayama, Mitsuhiro
    POLYMER, 2016, 93 : 152 - 158
  • [33] ERH facilitates microRNA maturation through the interaction with the N-terminus of DGCR8
    Kwon, S. Chul
    Jang, Harim
    Shen, Siyuan
    Baek, S. Chan
    Kim, Kijun
    Yang, Jihye
    Kim, Jeesoo
    Kim, Jong-Seo
    Wang, Suman
    Shi, Yunyu
    Li, Fudong
    Kim, V. Narry
    NUCLEIC ACIDS RESEARCH, 2020, 48 (19) : 11097 - 11112
  • [34] Conformation of surface exposed N-terminus part of bacteriorhodopsin studied by transferred NOE technique
    Pashkov, VS
    Balashova, TA
    Zhemaeva, LV
    Sikilinda, NN
    Kutuzov, MA
    Abdulaev, NG
    Arseniev, AS
    FEBS LETTERS, 1996, 381 (1-2) : 119 - 122
  • [35] The N-Terminus of the Intrinsically Disordered Protein α-Synuclein Triggers Membrane Binding and Helix Folding
    Bartels, Tim
    Ahlstrom, Logan S.
    Leftin, Avigdor
    Kamp, Frits
    Haass, Christian
    Brown, Michael F.
    Beyer, Klaus
    BIOPHYSICAL JOURNAL, 2010, 99 (07) : 2116 - 2124
  • [36] The N-terminus modulates human Caf1 activity, structural stability and aggregation
    Feng, Li-Kui
    Yan, Yong-Bin
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2012, 51 (04) : 497 - 503
  • [37] The N-terminus of Paenibacillus larvae C3larvinA modulates catalytic efficiency
    Turner, Madison
    Heney, Kayla A.
    Merrill, A. Rod
    BIOSCIENCE REPORTS, 2021, 41 (01)
  • [38] Generation and characterization of monoclonal antibodies against the N-terminus of alpha-2-antiplasmin
    Abdul, Shiraazkhan
    Peeters, Miet
    Brouwers, Els
    Malfliet, Joyce J. M. C.
    Leebeek, Frank W. G.
    Declerck, Paul J.
    Rijken, Dingeman C.
    de Willige, Shirley Uitte
    PLOS ONE, 2018, 13 (05):
  • [39] Targeting of δ-catenin to postsynaptic sites through interaction with the Shank3 N-terminus
    Hassani Nia, Fatemeh
    Woike, Daniel
    Martens, Victoria
    Klussendorf, Malte
    Honck, Hans-Hinrich
    Harder, Sonke
    Kreienkamp, Hans-Jurgen
    MOLECULAR AUTISM, 2020, 11 (01)
  • [40] Characterization of SKAP/kinastrin isoforms: the N-terminus defines tissue specificity and Pontin binding
    Vranesic, Anita Cindric
    Reiche, Juliane
    Hoischen, Christian
    Wohlmann, Andreas
    Bratsch, Jens
    Friedrich, Karlheinz
    Guenes, Berkay
    Cappallo-Obermann, Heike
    Kirchhoff, Christiane
    Diekmann, Stephan
    Guenes, Cagatay
    Huber, Otmar
    HUMAN MOLECULAR GENETICS, 2016, 25 (13) : 2838 - 2852