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Hsu, J. C.-C.

Publications and source records attributed to Hsu, J. C.-C..

3 recordsLinked to original sources

Characterizing neuroinvasion and neuropathology of SARS-CoV-2 by using AC70 human ACE2 transgenic mice

COVID-19 presents with a plethora of neurological signs and symptoms despite being characterized as a respiratory disease, including seizures, anxiety, depression, amnesia, attention deficits, and alterations in consciousness. The olfactory nerve is widely accepted as the neuroinvasive route by which the etiological agent SARS-CoV-2 enters the brain, but the trigeminal nerve is an often-overlooked additional route. Based on this consensus, we initially conducted a pilot experiment investigating the olfactory nerve route of SARS-CoV-2 neuroinvasion via intranasal inoculation in AC70 human ACE2 transgenic mice. Notably, we found that the trigeminal ganglion is an early and highly efficient site of viral replication, which then rapidly spread widely throughout the brain where neurons were primarily targeted. Despite the extensive viral infection across the brain, obvious evidence of tissue pathology including inflammatory infiltration, glial activation, and apoptotic cell deaths were not consistently observed, albeit inflammatory cytokines were significantly induced. However, the expression levels of different genes related to neuronal function, including the neurotransmitter dopamine pathway as well as synaptic function, and markers of neuronal damage were altered as compared to mock-infected mice. Our findings suggest that the trigeminal nerve can be a neuroinvasive route complementary to the olfactory nerve and that the ensuing neuroinvasion presented a unique neuropathological profile. This study provides insights into potential neuropathogenic mechanisms utilized by coronaviruses. IMPORTANCECOVID-19 presents with extrapulmonary signs and symptoms, the most notable of which involve the central nervous system, such as seizures and alterations in consciousness, and can eventually lead to death if severe enough. Some neurological signs and symptoms may continue to persist in some patients even after the resolution of active viral infection in the form of post-acute sequelae. Since the trigeminal nerve is a commonly under-studied route of entry into the brain in studies of coronaviruses and the neuropathogenic mechanisms of COVID-19 are not entirely elucidated, there is a need to thoroughly investigate this route of neuroinvasion. The significance of our research is in providing insights into the possible routes of SARS-CoV-2 neuroinvasion as well as the discovery of potential neuropathogenic mechanisms which may help guide the development of novel medical countermeasures.

pathology↗

Single-molecule localization microscopy reveals the ultrastructural root constitution of distal appendages in expanded mammalian centrioles

Distal appendages (DAPs) are vital in cilia formation, mediating vesicular and ciliary docking to the plasma membrane during early ciliogenesis. Although numerous DAP proteins arranging a nine-fold symmetry have been studied using superresolution microscopy analyses, the extensive ultrastructural understanding of the DAP root structure developing from the centriole wall remains elusive owing to insufficient resolution. Here, we proposed a pragmatic imaging strategy for two-color single-molecule localization microscopy of swellable mammalian DAP proteins. Importantly, our imaging workflow enables us to push the resolution limit of a light microscope well close to an electron microscopy level, thus achieving an unprecedented {lambda}/200 mapping precision inside intact cells. Upon this workflow, we unravel the ultraresolved higher-order protein complexes of the core DAP. Intriguingly, C2CD3, microtubule triplet, and ODF2 jointly constitute the spatial basis of DAP, suggesting a unique configuration of the DAP assembly. Moreover, our results show that the distal-layered ODF2 labeled at the N- and C-terminus construct a fastening unit encircling the microtubule triplets. Together, we develop an organelle-based drift correction protocol and a two-color solution with minimum crosstalk, allowing a robust localization microscopy imaging of expanded cellular structures deep into the gel-specimen composites.

biophysics↗

SARS-CoV-2 accessory proteins ORF7a and ORF3a use distinct mechanisms to downregulate MHC-I surface expression

Major histocompatibility complex class I (MHC-I) molecules, which are dimers of a glycosylated polymorphic transmembrane heavy chain and the small protein {beta}2-microglobulin ({beta}2m), bind peptides in the endoplasmic reticulum that are generated by the cytosolic turnover of cellular proteins. In virus-infected cells these peptides may include those derived from viral proteins. Peptide-MHC-I complexes then traffic through the secretory pathway and are displayed at the cell surface where those containing viral peptides can be detected by CD8+ T lymphocytes that kill infected cells. Many viruses enhance their in vivo survival by encoding genes that downregulate MHC-I expression to avoid CD8+ T cell recognition. Here we report that two accessory proteins encoded by SARS-CoV-2, the causative agent of the ongoing COVID-19 pandemic, downregulate MHC-I expression using distinct mechanisms. One, ORF3a, a viroporin, reduces global trafficking of proteins, including MHC-I, through the secretory pathway. The second, ORF7a, interacts specifically with the MHC-I heavy chain, acting as a molecular mimic of {beta}2m to inhibit its association. This slows the exit of properly assembled MHC-I molecules from the endoplasmic reticulum. We demonstrate that ORF7a reduces antigen presentation by the human MHC-I allele HLA-A*02:01. Thus, both ORF3a and ORF7a act post-translationally in the secretory pathway to lower surface MHC-I expression, with ORF7a exhibiting a novel and specific mechanism that allows immune evasion by SARS-CoV-2. Significance StatementViruses may down-regulate MHC class I expression on infected cells to avoid elimination by cytotoxic T cells. We report that the accessory proteins ORF7a and ORF3a of SARS-CoV-2 mediate this function and delineate the two distinct mechanisms involved. While ORF3a inhibits global protein trafficking to the cell surface, ORF7a acts specifically on MHC-I by competing with {beta}2m for binding to the MHC-I heavy chain. This is the first account of molecular mimicry of {beta}2m as a viral mechanism of MHC-I down-regulation to facilitate immune evasion.

immunology↗