Advances in SIV/SHIV Non-Human Primate Models of NeuroAIDS
Abstract
:1. Introduction
2. Model of NeuroAIDS and cART
3. Virus Persistence in the CNS
4. Viral Sequence Evolution and Host Genetics
5. Neurotoxicity of Viral Proteins
6. Biomarkers Predicting CNS Disease Progression
6.1. Hematologic Markers
6.2. CSF Markers
6.3. Omics-Based Analyses
6.4. Neuroimaging Markers
7. Innovative Therapeutic Approaches
Future Therapeutic Prospects
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Species | Virus | Outcome | Applications | Reference |
---|---|---|---|---|
Rhesus | CD8-depletion/ SIVmac251/239 | Rapid disease progression and high incidence of SIVE/ neuroAIDS | neuropathogenesis, viral evolution, ART therapy, omics-based analyses | [11,12,19,20,21] |
Rhesus | CD4-depletion/ SIVmac251 | Rapid disease progression to neuroAIDS, productive infection in microglia | neuropathogenesis, ART therapy | [22,23] |
Pigtailed | SIV/DeltaB670/ SIV/17E-Fr | Rapid disease progression to SIVE/ neuroAIDS | neuropathogenesis, biomarkers of HAND, latent SIV reservoir, therapies for HAND, ART therapy,
viral evolution | [24,25] |
Rhesus | SIVsm804E | Rapid disease progression and high incidence of SIVE/ neuroAIDS | neuropathogenesis, viral evolution, biomarkers of HAND | [26] |
Rhesus | SIVsm804E-CL757 | High frequencies of neurological disorders without rapid disease progression, SIVE/neuroAIDS | neuropathogenesis, viral evolution, latent SIV reservoir | [27,28,29] |
Biomarker | Outcome | Reference | |
---|---|---|---|
Hematologic | Plasma viral RNA | Increase | [24] |
Hemoglobin | Decrease | [70] | |
Platelet count | Decrease | [70,71] | |
Circulating monocytes | No change | [12,70,71] | |
Circulating monocytes | Increase | [16] | |
Soluble CD163 | Increase | [16,70] | |
CSF | CSF viral RNA | Increase | [24] |
CCL2 a | Increase | [32,70] | |
IL6 | Increase | [70] | |
Neopterin | Increase | [70] | |
YKL-40 b | Increase | [72,73,74] | |
NF-L c | Increase | [70] | |
QUIN/TRP d | Increase | [70] | |
KP e | Increase | [75,76] | |
MicroRNAs f | Upregulation | [70,77,78,79,80,81,82,83,84,85,86,87] | |
Omics-based analyses | Metabolomic g | Increase | [88] |
Proteomic h | Increase | [88,89] | |
Neuroimaging | MRI i | - | [90,91,92,93,94,95,96,97,98,99,100,101,102,103] |
PET j | - | [104,105,106,107,108] |
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Moretti, S.; Virtuoso, S.; Sernicola, L.; Farcomeni, S.; Maggiorella, M.T.; Borsetti, A. Advances in SIV/SHIV Non-Human Primate Models of NeuroAIDS. Pathogens 2021, 10, 1018. https://doi.org/10.3390/pathogens10081018
Moretti S, Virtuoso S, Sernicola L, Farcomeni S, Maggiorella MT, Borsetti A. Advances in SIV/SHIV Non-Human Primate Models of NeuroAIDS. Pathogens. 2021; 10(8):1018. https://doi.org/10.3390/pathogens10081018
Chicago/Turabian StyleMoretti, Sonia, Sara Virtuoso, Leonardo Sernicola, Stefania Farcomeni, Maria Teresa Maggiorella, and Alessandra Borsetti. 2021. "Advances in SIV/SHIV Non-Human Primate Models of NeuroAIDS" Pathogens 10, no. 8: 1018. https://doi.org/10.3390/pathogens10081018
APA StyleMoretti, S., Virtuoso, S., Sernicola, L., Farcomeni, S., Maggiorella, M. T., & Borsetti, A. (2021). Advances in SIV/SHIV Non-Human Primate Models of NeuroAIDS. Pathogens, 10(8), 1018. https://doi.org/10.3390/pathogens10081018