Cargando…
A Human Stem Cell-Derived Neurosensory–Epithelial Circuitry on a Chip to Model Herpes Simplex Virus Reactivation
Both emerging viruses and well-known viral pathogens endowed with neurotropism can either directly impair neuronal functions or induce physio-pathological changes by diffusing from the periphery through neurosensory–epithelial connections. However, developing a reliable and reproducible in vitro sys...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9495731/ https://www.ncbi.nlm.nih.gov/pubmed/36140168 http://dx.doi.org/10.3390/biomedicines10092068 |
_version_ | 1784794091390763008 |
---|---|
author | Mazzara, Pietro Giuseppe Criscuolo, Elena Rasponi, Marco Massimino, Luca Muggeo, Sharon Palma, Cecilia Castelli, Matteo Clementi, Massimo Burioni, Roberto Mancini, Nicasio Broccoli, Vania Clementi, Nicola |
author_facet | Mazzara, Pietro Giuseppe Criscuolo, Elena Rasponi, Marco Massimino, Luca Muggeo, Sharon Palma, Cecilia Castelli, Matteo Clementi, Massimo Burioni, Roberto Mancini, Nicasio Broccoli, Vania Clementi, Nicola |
author_sort | Mazzara, Pietro Giuseppe |
collection | PubMed |
description | Both emerging viruses and well-known viral pathogens endowed with neurotropism can either directly impair neuronal functions or induce physio-pathological changes by diffusing from the periphery through neurosensory–epithelial connections. However, developing a reliable and reproducible in vitro system modeling the connectivity between the different human sensory neurons and peripheral tissues is still a challenge and precludes the deepest comprehension of viral latency and reactivation at the cellular and molecular levels. This study shows a stable topographic neurosensory–epithelial connection on a chip using human stem cell-derived dorsal root ganglia (DRG) organoids. Bulk and single-cell transcriptomics showed that different combinations of key receptors for herpes simplex virus 1 (HSV-1) are expressed by each sensory neuronal cell type. This neuronal–epithelial circuitry enabled a detailed analysis of HSV infectivity, faithfully modeling its dynamics and cell type specificity. The reconstitution of an organized connectivity between human sensory neurons and keratinocytes into microfluidic chips provides a powerful in vitro platform for modeling viral latency and reactivation of human viral pathogens. |
format | Online Article Text |
id | pubmed-9495731 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-94957312022-09-23 A Human Stem Cell-Derived Neurosensory–Epithelial Circuitry on a Chip to Model Herpes Simplex Virus Reactivation Mazzara, Pietro Giuseppe Criscuolo, Elena Rasponi, Marco Massimino, Luca Muggeo, Sharon Palma, Cecilia Castelli, Matteo Clementi, Massimo Burioni, Roberto Mancini, Nicasio Broccoli, Vania Clementi, Nicola Biomedicines Article Both emerging viruses and well-known viral pathogens endowed with neurotropism can either directly impair neuronal functions or induce physio-pathological changes by diffusing from the periphery through neurosensory–epithelial connections. However, developing a reliable and reproducible in vitro system modeling the connectivity between the different human sensory neurons and peripheral tissues is still a challenge and precludes the deepest comprehension of viral latency and reactivation at the cellular and molecular levels. This study shows a stable topographic neurosensory–epithelial connection on a chip using human stem cell-derived dorsal root ganglia (DRG) organoids. Bulk and single-cell transcriptomics showed that different combinations of key receptors for herpes simplex virus 1 (HSV-1) are expressed by each sensory neuronal cell type. This neuronal–epithelial circuitry enabled a detailed analysis of HSV infectivity, faithfully modeling its dynamics and cell type specificity. The reconstitution of an organized connectivity between human sensory neurons and keratinocytes into microfluidic chips provides a powerful in vitro platform for modeling viral latency and reactivation of human viral pathogens. MDPI 2022-08-24 /pmc/articles/PMC9495731/ /pubmed/36140168 http://dx.doi.org/10.3390/biomedicines10092068 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Mazzara, Pietro Giuseppe Criscuolo, Elena Rasponi, Marco Massimino, Luca Muggeo, Sharon Palma, Cecilia Castelli, Matteo Clementi, Massimo Burioni, Roberto Mancini, Nicasio Broccoli, Vania Clementi, Nicola A Human Stem Cell-Derived Neurosensory–Epithelial Circuitry on a Chip to Model Herpes Simplex Virus Reactivation |
title | A Human Stem Cell-Derived Neurosensory–Epithelial Circuitry on a Chip to Model Herpes Simplex Virus Reactivation |
title_full | A Human Stem Cell-Derived Neurosensory–Epithelial Circuitry on a Chip to Model Herpes Simplex Virus Reactivation |
title_fullStr | A Human Stem Cell-Derived Neurosensory–Epithelial Circuitry on a Chip to Model Herpes Simplex Virus Reactivation |
title_full_unstemmed | A Human Stem Cell-Derived Neurosensory–Epithelial Circuitry on a Chip to Model Herpes Simplex Virus Reactivation |
title_short | A Human Stem Cell-Derived Neurosensory–Epithelial Circuitry on a Chip to Model Herpes Simplex Virus Reactivation |
title_sort | human stem cell-derived neurosensory–epithelial circuitry on a chip to model herpes simplex virus reactivation |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9495731/ https://www.ncbi.nlm.nih.gov/pubmed/36140168 http://dx.doi.org/10.3390/biomedicines10092068 |
work_keys_str_mv | AT mazzarapietrogiuseppe ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT criscuoloelena ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT rasponimarco ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT massiminoluca ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT muggeosharon ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT palmacecilia ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT castellimatteo ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT clementimassimo ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT burioniroberto ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT mancininicasio ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT broccolivania ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT clementinicola ahumanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT mazzarapietrogiuseppe humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT criscuoloelena humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT rasponimarco humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT massiminoluca humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT muggeosharon humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT palmacecilia humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT castellimatteo humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT clementimassimo humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT burioniroberto humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT mancininicasio humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT broccolivania humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation AT clementinicola humanstemcellderivedneurosensoryepithelialcircuitryonachiptomodelherpessimplexvirusreactivation |