Ab initio modelling of an essential mammalian protein: Transcription Termination Factor 1 (TTF1).
Kumud TiwariAditi GangopadhyayGajender SinghVinay Kumar SinghSamarendra Kumar SinghPublished in: Journal of biomolecular structure & dynamics (2022)
Transcription Termination Factor 1 (TTF1) is an essential mammalian protein that regulates transcription, replication fork arrest, DNA damage repair, chromatin remodelling etc. TTF1 interacts with numerous cellular proteins to regulate various cellular phenomena which play a crucial role in maintaining normal cellular physiology, and dysregulation of this protein has been reported to induce oncogenic transformation of the cells. However, despite its key role in many cellular processes, the complete structure of human TTF1 has not been elucidated to date, neither experimentally nor computationally. Therefore, understanding the structure of human TTF1 is crucial for studying its functions and interactions with other cellular factors. The aim of this study was to construct the complete structure of human TTF1 protein, using molecular modelling approaches. Owing to the lack of suitable homologues in the Protein Data Bank (PDB), the complete structure of human TTF1 was constructed by ab initio modelling. The structural stability was determined with molecular dynamics (MD) simulations in explicit solvent, and trajectory analyses. The frequently occurring conformation of human TTF1 was selected by trajectory clustering, and the central residues of this conformation were determined by centrality analyses of the Residue Interaction Network (RIN) of TTF1. Two residue clusters, one in the oligomerization domain and other in the C-terminal domain, were found to be central to the structural stability of human TTF1. To the best of our knowledge, this study is the first to report the complete structure of this essential mammalian protein, and the results obtained herein will provide structural insights for future research including that in cancer biology and related studies.Communicated by Ramaswamy H. Sarma.
Keyphrases
- endothelial cells
- molecular dynamics
- dna damage
- induced pluripotent stem cells
- pluripotent stem cells
- protein protein
- healthcare
- transcription factor
- amino acid
- squamous cell carcinoma
- binding protein
- oxidative stress
- gene expression
- small molecule
- signaling pathway
- induced apoptosis
- papillary thyroid
- dna methylation
- dna repair
- lymph node metastasis
- data analysis
- cell cycle arrest
- childhood cancer