4.5 Article

Vectorial insertion of a β-helical peptide into membrane: a theoretical study on polytheonamide B

Journal

BIOPHYSICAL JOURNAL
Volume 120, Issue 21, Pages 4786-4797

Publisher

CELL PRESS
DOI: 10.1016/j.bpj.2021.09.028

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Funding

  1. Ministry of Education, Culture, Sports, Science and Technology (MEXT) of the Government of Japan
  2. Japan Science and Technology Agency (JST), PRESTO, Japan [JPMJPR20K6]
  3. Japan Society for the Promotion of Science (JSPS) [JP20H00497, JP21H04676]

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This study investigates the dynamic mechanism of the vectorial insertion of polytheonamide B (pTB), a prefolded cytotoxic peptide. The all-atom molecular dynamics simulations reveal that the insertion of pTB involves three phases - landing, penetration, and equilibration, with an energy cost of 4.3 kcal/mol at the membrane surface. The membrane insertion of pTB can occur through either trapped or untrapped pathways, with membrane anchoring by the hydrophobic N-terminal blocking group playing a crucial role in the landing phase.
Spontaneous unidirectional, or vectorial, insertion of transmembrane peptides is a fundamental biophysical process for toxin and viral actions. Polytheonamide B (pTB) is a potent cytotoxic peptide with a b6.3-helical structure. Previous experimental studies revealed that the pTB inserts into the membrane in a vectorial fashion and forms a channel with its single molecular length long enough to span the membrane. Also, molecular dynamics simulation studies demonstrated that the pTB is prefolded in aqueous solution. These are unique features of pTB because most of the peptide toxins form channels through oligomerization of transmembrane helices. Here, we performed all-atom molecular dynamics simulations to examine the dynamic mechanism of the vectorial insertion of pTB, providing underlying elementary processes of the membrane insertion of a prefolded single transmembrane peptide. We find that the insertion of pTB proceeds with only the local lateral compression of the membrane in three successive phases: landing,penetration,and equilibrationphases. The free energy calculations using the replica-exchange umbrella sampling simulations present an energy cost of 4.3 kcal/mol at the membrane surface for the membrane insertion of pTB from bulk water. The trajectories of membrane insertion revealed that the insertion process can occur in two possible pathways, namely trappedand untrappedinsertions; in some cases, pTB is trapped in the upper leaflet during the penetration phase. Our simulations demonstrated the importance of membrane anchoring by the hydrophobic N-terminal blocking group in the landing phase, leading to subsequent vectorial insertion.

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