TY - JOUR
T1 - Conformational ensemble of an intrinsically flexible loop in mitochondrial import protein Tim21 studied by modeling and molecular dynamics simulations
AU - Srivastava, Arpita
AU - Bala, Siqin
AU - Motomura, Hajime
AU - Kohda, Daisuke
AU - Tama, Florence
AU - Miyashita, Osamu
N1 - Funding Information:
This work was supported by JSPS KAKENHI Grant Number JP26119002 and JP19H05452 to D.K, 26119006 and 15K21711 to F.T. and FOCUS for Establishing Supercomputing Center of Excellence to F.T. and O.M. This work used the computational resources of ITO of the Research Institute for Information Technology (R.I.I.T.), Kyushu University .
Funding Information:
This work was supported by JSPS KAKENHI Grant Number JP26119002 and JP19H05452 to D.K, 26119006 and 15K21711 to F.T. and FOCUS for Establishing Supercomputing Center of Excellence to F.T. and O.M. This work used the computational resources of ITO of the Research Institute for Information Technology (R.I.I.T.), Kyushu University.
Publisher Copyright:
© 2019 Elsevier B.V.
PY - 2020/2
Y1 - 2020/2
N2 - Background: Tim21, a subunit of a highly dynamic translocase of the inner mitochondrial membrane (TIM23) complex, translocates proteins by interacting with subunits in the translocase of the outer membrane (TOM) complex and Tim23 channel in the TIM23 complex. A loop segment in Tim21, which is in close proximity of the binding site of Tim23, has different conformations in X-ray, NMR and new crystal contact-free space (CCFS) structures. MD simulations can provide information on the structure and dynamics of the loop in solution. Methods: The conformational ensemble of the loop was characterized using loop modeling and molecular dynamics (MD) simulations. Results: MD simulations confirmed mobility of the loop. Multidimensional scaling and clustering were used to characterize the dynamic conformational ensemble of the loop. Free energy landscape showed that the CCFS crystal structure occupied a low energy region as compared to the conventional X-ray crystal structure. Analysis of crystal packing indicates that the CCFS provides larger conformational space for the motions of the loop. Conclusions: Our work reported the conformational ensemble of the loop in solution, which is in agreement with the structure obtained from CCFS approach. The combination of the experimental techniques and computational methods is beneficial for studying highly flexible regions of proteins. General significance: Computational methods, such as loop modeling and MD simulations, have proved to be useful for studying conformational flexibility of proteins. These methods in integration with experimental techniques such as CCFS has the potential to transform the studies on flexible regions of proteins.
AB - Background: Tim21, a subunit of a highly dynamic translocase of the inner mitochondrial membrane (TIM23) complex, translocates proteins by interacting with subunits in the translocase of the outer membrane (TOM) complex and Tim23 channel in the TIM23 complex. A loop segment in Tim21, which is in close proximity of the binding site of Tim23, has different conformations in X-ray, NMR and new crystal contact-free space (CCFS) structures. MD simulations can provide information on the structure and dynamics of the loop in solution. Methods: The conformational ensemble of the loop was characterized using loop modeling and molecular dynamics (MD) simulations. Results: MD simulations confirmed mobility of the loop. Multidimensional scaling and clustering were used to characterize the dynamic conformational ensemble of the loop. Free energy landscape showed that the CCFS crystal structure occupied a low energy region as compared to the conventional X-ray crystal structure. Analysis of crystal packing indicates that the CCFS provides larger conformational space for the motions of the loop. Conclusions: Our work reported the conformational ensemble of the loop in solution, which is in agreement with the structure obtained from CCFS approach. The combination of the experimental techniques and computational methods is beneficial for studying highly flexible regions of proteins. General significance: Computational methods, such as loop modeling and MD simulations, have proved to be useful for studying conformational flexibility of proteins. These methods in integration with experimental techniques such as CCFS has the potential to transform the studies on flexible regions of proteins.
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U2 - 10.1016/j.bbagen.2019.129417
DO - 10.1016/j.bbagen.2019.129417
M3 - Article
C2 - 31445064
AN - SCOPUS:85071890462
SN - 0304-4165
VL - 1864
JO - Biochimica et Biophysica Acta - General Subjects
JF - Biochimica et Biophysica Acta - General Subjects
IS - 2
M1 - 129417
ER -