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Biology subjects

Chan, K. R.

Publications and source records attributed to Chan, K. R..

4 recordsLinked to original sources

Dengue infection elicits skin tissue-resident and circulating CD8+ T-cells associated with protection from hospitalization.

Dengue is spreading globally and there is urgent need to define immune correlates of protection against this disease. Immune responses against dengue viruses have been studied in blood samples of dengue patients. However, dengue virus infection first occurs in the skin following the bite of an infected Aedes mosquito, and immune responses are initiated within this site. In this study, we investigated the phenotypic, functional and transcriptional profiles of skin and blood T-cell responses and their role in immunity in 73 dengue patients and 10 healthy volunteers. We show that the skin T-cell compartment undergoes dramatic reshaping compared to the blood of dengue patients. CD4+ and CD8+ T-cell responses were highly enriched in the skin compared to the blood of the same patients, and skin-based T-cells expressed markers associated with tissue-resident T (TRM) cells. While the magnitude of the CD4+ T-cell response in the skin was independent to that in the blood, CD8+ T-cell responses in skin and blood were positively correlated. Activated CD8+ T-cells in the skin expressed a core transcriptional signature of TRM cells, further supporting their differentiation to the TRM lineage during infection. The magnitude of both skin and blood CD8+ T-cell responses was associated with protection from hospitalization in this cohort. These data collectively support a protective role of skin-resident and circulating CD8+ T-cells in dengue and provide insights into the biology of TRM cells in human infection. Our findings warrant evaluation of vaccination strategies that induce TRM cells in the skin to enhance protection against dengue. One Sentence SummaryDengue infection elicits skin tissue-resident and circulating CD8+ T-cells associated with protection from hospitalization in adult dengue patients.

immunology↗

An Fc-SPINK1 fusion protein inhibits pancreatic inflammation in a mouse model

Pancreatitis results from premature activation and impaired inactivation of pancreatic proteases, primarily trypsin, leading to self-digestion, tissue necrosis, fibrosis, and inflammation. SPINK1 is a pancreas-specific inhibitor of trypsin that prevents premature trypsin activation, and could be a candidate therapeutic. However, because of its small size, SPINK1 would be subject to rapid renal clearance, making it ineffective. To construct a long half-life therapeutic inhibitor of trypsin for pancreatitis treatment we fused this protein to the C-terminus of an IgG1 antibody Fc element, increasing the size to [~]78 kDa, thereby exceeding the renal clearance threshold and providing for FcRn-mediated recycling out of cells. A non-glycosylated form of Fc-SPINK1 was expressed in the yeast Pichia pastoris. Fc-SPINK1 inhibits trypsin enzyme activity in vitro. The blood pharmacokinetics in mice are consistent with a three-compartment distribution model and a terminal half-life of [~]3 days. In a caerulein-induced mouse model of pancreatitis, Fc-SPINK1 significantly ameliorated cell death and immune cell infiltration. We developed an automated image analysis technique to quantify pancreatitis-associated loss of tissue cohesion, and found that Fc-SPINK1 also reduced this effect. This study demonstrates the potential of Fc-SPINK1 as a rationally designed therapy for pancreatitis.

pharmacology and toxicology↗

N153-linked glycans on envelope protein protect orthoflaviviruses from antibody-mediated clearance

The envelope (E) protein of dengue virus (DENV) is glycosylated at two highly conserved asparagine (N) sites (N67 and N153). The role and importance of these N-linked glycans in DENV pathogenesis has been elusive. Here, we report the critical role of N153-linked glycans on E protein in preventing antibody-mediated viral clearance. A DENV2 mutant lacking N153-linked glycans (N153Q mutant) was engineered and found to be mildly impaired in vitro but drastically attenuated in a symptomatic mouse model of severe dengue, as evidenced by accelerated viral clearance. In B cell-deficient mouse models, N153Q mutant displayed parental virulence and viremia profile. Homologous and heterologous passive transfers of purified IgM from infected B cell-proficient mice into B cell-deficient mice demonstrated the role of N153Q-specific IgM in N153Q attenuation and accelerated clearance, while WT DENV was unaffected by IgM from both WT- and N153Q-infected mice. Furthermore, in vitro neutralization assay supported that the accelerated clearance of N153Q mutant in mice was mediated by non-neutralizing IgM. Furthermore, using plasma samples from convalescent dengue patients and monoclonal antibodies, in vitro neutralization assays showed that N153Q virus was more susceptible than WT to IgG-mediated neutralization. Glycoproteomics combined with molecular dynamics (MD) simulations revealed that glycan composition on E protein influenced IgG binding. Our findings were extended to all DENV serotypes and ZIKV, hence supporting that the N153 glycans-mediated immune evasion strategy is conserved across orthoflaviviruses.

microbiology↗

De-glycosylated non-structural protein 1 enhances dengue virus clearance by limiting PD-L1/PD-1 mediated T cell apoptosis

The non-structural protein 1 (NS1) of dengue virus (DENV) contains two highly conserved N-glycosylation sites at positions 130 and 207 (N130 and N207). Intracellular NS1 monomers and homo-dimers participate in viral RNA replication within membrane-bound replication complexes. Soluble multimeric NS1 (sNS1) is secreted into the extracellular milieu and represents an important virulence factor for DENV through its ability to interfere with the host complement activation cascade and to induce vascular leakage. The role of the two N-glycans in NS1 biological activities, however, has not been carefully examined. Here, stable DENV2 mutants that lack glycan at either N sites of NS1 were engineered. We showed that the lack of glycans at either N site of NS1 did not impair viral replication nor viral output in both mosquito and mammalian cell lines. In contrast, while N130 de-glycosylated DENV displayed parental in vivo fitness in IFNAR-/- mice, the N207 de-glycosylated mutant was significantly attenuated as evidenced by 100% survival rate, which correlated with accelerated viral clearance in circulation. sNS1-depletion, sNS1 exogenous administration and co-infection experiments supported that N207 de-glycosylated NS1 exerted a dominant attenuating effect during in vivo infection. Bulk RNAseq, inflammatory cytokine profile, immune phenotyping of neutrophils and T cells, immune cell depletion and immune checkpoint blockade approaches led us to propose that N207 de-glycosylated NS1 limited CD8+ T cell apoptosis mediated by the PD-L1/PD-1 axis, thereby improving viral clearance efficacy. This work uncovers a novel immune evasion strategy where N207 glycans on NS1 prevent the protein from exerting immune modulation activity that would be detrimental to DENV.

microbiology↗