Capillarity Reveals the Role of Capsid Geometry in HIV Nuclear Translocation

Fuente: arXiv
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Main Authors: Brown, Alex W., Al-Izzi, Sami C., Parker, Jack L., Hertel, Sophie, Jacques, David A., Kusumaatmaja, Halim, Morris, Richard G.
Format: Preprint
Published: 2025
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_version_ 1866915586861170688
author Brown, Alex W.
Al-Izzi, Sami C.
Parker, Jack L.
Hertel, Sophie
Jacques, David A.
Kusumaatmaja, Halim
Morris, Richard G.
author_facet Brown, Alex W.
Al-Izzi, Sami C.
Parker, Jack L.
Hertel, Sophie
Jacques, David A.
Kusumaatmaja, Halim
Morris, Richard G.
contents The protective capsid encasing the genetic material of Human Immunodeficiency Virus (HIV) has been shown to traverse the nuclear pore complex (NPC) intact, despite exceeding the passive diffusion threshold by over three orders of magnitude. This remarkable feat is attributed to the properties of the capsid surface, which confer solubility within the NPC's phase-separated, condensate-like barrier. In this context, we apply the classical framework of wetting and capillarity -- integrating analytical methods with sharp- and diffuse-interface numerical simulations -- to elucidate the physical underpinnings of HIV nuclear entry. Our analysis captures several key phenomena: the reorientation of incoming capsids due to torques arising from asymmetric capillary forces; the role of confinement in limiting capsid penetration depths; the classification of translocation mechanics according to changes in topology and interfacial area; and the influence of (spontaneous) rotational symmetry-breaking on energetics. These effects are all shown to depend critically on capsid geometry, arguing for a physical basis for HIV's characteristic capsid shape.
format Preprint
id arxiv_https___arxiv_org_abs_2510_26357
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Capillarity Reveals the Role of Capsid Geometry in HIV Nuclear Translocation
Brown, Alex W.
Al-Izzi, Sami C.
Parker, Jack L.
Hertel, Sophie
Jacques, David A.
Kusumaatmaja, Halim
Morris, Richard G.
Biological Physics
Soft Condensed Matter
Subcellular Processes
The protective capsid encasing the genetic material of Human Immunodeficiency Virus (HIV) has been shown to traverse the nuclear pore complex (NPC) intact, despite exceeding the passive diffusion threshold by over three orders of magnitude. This remarkable feat is attributed to the properties of the capsid surface, which confer solubility within the NPC's phase-separated, condensate-like barrier. In this context, we apply the classical framework of wetting and capillarity -- integrating analytical methods with sharp- and diffuse-interface numerical simulations -- to elucidate the physical underpinnings of HIV nuclear entry. Our analysis captures several key phenomena: the reorientation of incoming capsids due to torques arising from asymmetric capillary forces; the role of confinement in limiting capsid penetration depths; the classification of translocation mechanics according to changes in topology and interfacial area; and the influence of (spontaneous) rotational symmetry-breaking on energetics. These effects are all shown to depend critically on capsid geometry, arguing for a physical basis for HIV's characteristic capsid shape.
title Capillarity Reveals the Role of Capsid Geometry in HIV Nuclear Translocation
topic Biological Physics
Soft Condensed Matter
Subcellular Processes
url https://arxiv.org/abs/2510.26357