TY - JOUR
T1 - Investigating stability landscape of Aurora kinase B probed by guanidinium chloride-induced unfolding
AU - Hasan, Gulam Mustafa
AU - Xie, Yuxin
AU - Rahman, Safikur
AU - Noor, Saba
AU - Thiyagarajan, Ramesh
AU - Khan, Faez Iqbal
AU - Hassan, Md Imtaiyaz
N1 - Publisher Copyright:
Copyright © 2026 Elsevier B.V. All rights reserved.
PY - 2026/2/22
Y1 - 2026/2/22
N2 - Aurora kinase B (AURKB), a serine/threonine kinase, is a key mitotic regulator essential for chromosome segregation, cytokinesis, and orderly cell division. Structural instability of AURKB can disrupt mitotic progression and, in turn, promote oncogenic transformation. In this study, we examined the structural stability landscape of human AURKB using guanidinium chloride (GdmCl)-induced denaturation. Structural perturbations in AURKB were assessed using far-UV circular dichroism (CD) and intrinsic tryptophan fluorescence spectroscopy. Spectroscopic analyses revealed a concentration-dependent destabilization of AURKB, with partial unfolding at 1.0 M GdmCl and significant loss of structure at 2.0 M GdmCl. Although AURKB retained residual activity at 2.0-2.5 M, complete loss was observed at higher concentrations. The stability parameters, including Gibbs free energy in the absence of denaturant (ΔG0D), the midpoint of denaturation (Cm), and the slope (m) of the ΔGD versus [GdmCl] plot, were calculated from the unfolding curves. The overlapping transition profiles indicated a two-state unfolding mechanism (N ⇌ D). Enzymatic assays further showed that even low GdmCl concentrations attenuated AURKB catalytic activity. MD simulations were performed to investigate the early steps of protein unfolding. Both complementary biophysical and computational analyses delineate the unfolding landscape of AURKB, offering mechanistic insight into the structural determinants governing kinase stability. This work enhances the understanding of AURKB behaviour under non-native conditions and may inform the rational design of stabilization strategies for therapeutic applications.
AB - Aurora kinase B (AURKB), a serine/threonine kinase, is a key mitotic regulator essential for chromosome segregation, cytokinesis, and orderly cell division. Structural instability of AURKB can disrupt mitotic progression and, in turn, promote oncogenic transformation. In this study, we examined the structural stability landscape of human AURKB using guanidinium chloride (GdmCl)-induced denaturation. Structural perturbations in AURKB were assessed using far-UV circular dichroism (CD) and intrinsic tryptophan fluorescence spectroscopy. Spectroscopic analyses revealed a concentration-dependent destabilization of AURKB, with partial unfolding at 1.0 M GdmCl and significant loss of structure at 2.0 M GdmCl. Although AURKB retained residual activity at 2.0-2.5 M, complete loss was observed at higher concentrations. The stability parameters, including Gibbs free energy in the absence of denaturant (ΔG0D), the midpoint of denaturation (Cm), and the slope (m) of the ΔGD versus [GdmCl] plot, were calculated from the unfolding curves. The overlapping transition profiles indicated a two-state unfolding mechanism (N ⇌ D). Enzymatic assays further showed that even low GdmCl concentrations attenuated AURKB catalytic activity. MD simulations were performed to investigate the early steps of protein unfolding. Both complementary biophysical and computational analyses delineate the unfolding landscape of AURKB, offering mechanistic insight into the structural determinants governing kinase stability. This work enhances the understanding of AURKB behaviour under non-native conditions and may inform the rational design of stabilization strategies for therapeutic applications.
KW - Aurora kinase B
KW - Guanidinium hydrochloride
KW - Kinase activity
KW - MD simulation
KW - Protein stability
KW - Unfolding kinetics
UR - https://www.scopus.com/pages/publications/105032778892
U2 - 10.1016/j.ijbiomac.2026.151044
DO - 10.1016/j.ijbiomac.2026.151044
M3 - Article
C2 - 41734840
AN - SCOPUS:105032778892
SN - 0141-8130
VL - 350
SP - 151044
JO - International Journal of Biological Macromolecules
JF - International Journal of Biological Macromolecules
ER -