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Updated: Aug 5, 2026

Structure-Guided Design and Development of Novel Cyclophilin A Inhibitors and Ganoderiol-F Derivatives: An In-Silico Approach
Published on: June 23, 2026
Mechanistic insights into macromolecular recognition at the PP2A-B55α regulatory groove from structure-based modeling
Muhammad Waqas1, Li Xuan1, Haoke Zhang2
1Dongguan Key Laboratory of Computer-Aided Drug Design, The First Dongguan Affiliated Hospital, Guangdong Medical University, Dongguan, 523710, China; Guangdong Medical University Key Laboratory of Big Data Mining and Precision Drug Design, Guangdong Provincial Engineering Technology Research Center for Innovative Drugs and Bioproducts, Guangdong Medical University, Dongguan, 523808, China.
Abstract:
Protein phosphatase 2 A (PP2A) achieves signaling specificity through regulatory B subunits, but the chemical and structural determinants of regulatory-subunit recognition surfaces remain incompletely defined. The first PP2A-B55α complex structure identified a regulatory groove on the β-propeller surface, spatially separated from the catalytic site and occupied by a FAM122A regulatory segment. This groove therefore represents a macromolecular recognition surface that can be systematically probed for cyclic peptide engagement. Here, 8466 cyclic peptides from CycPeptMPDB were screened against the B55α regulatory groove, and KarmaDock score-based ranking prioritized seven representative cyclic peptides for detailed structural and energetic analysis. Refined simulations showed peptide-dependent modulation of conformational stability, convergence to stable bound states, selective stabilization of the regulatory groove, and retained flexibility of the extended A-subunit arm. Triplicate and extended simulations of P-659, together with triplicate simulations of the top candidate P-589, further supported reproducible structural behavior and binding energetics. Persistent hydrogen-bonding patterns suggested peptide-specific anchoring through Asp190, Asp197, Asp333, Tyr330, Ser280, and Lys345. Peptide binding was accompanied by the expected displacement of solvent from the solvent-exposed groove interior and localized reorganization of interfacial hydration, while residue-wise thermodynamic profiling identified Lys81, Met215, Glu216, Phe273, Tyr330, Asp333, and Phe336 as key solvent-response residues. Alanine scanning identified Asp197 as the principal energetic hotspot, with ligand-specific contributions from Ser280, Tyr330, and Asp333. Binding free-energy calculations indicated balanced gas-phase and solvation contributions, with P-589 showing the most favorable relative MM-GBSA binding-energy estimate among the analyzed peptides (ΔGTOTAL = -61.84 ± 0.43 kcal/mol). Together, these data establish a computational, structure-, dynamics-, and energetics-resolved framework for cyclic peptide recognition at the PP2A-B55α regulatory groove and define testable hypotheses for experimental validation.
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