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Biology subjects

Bruce, L.

Publications and source records attributed to Bruce, L..

4 recordsLinked to original sources

A clinical stage LMW-DS drug inhibits cell infection by coronaviruses and modulates reactive cytokine release from microglia

Most coronaviruses infect animals including bats, birds and mammals, which act as hosts and reservoirs for the viruses, but the viruses can sometimes move host species and infect humans. Coronoviruses were first identified as human pathogens in the 1960s and now there are seven types known to infect humans. Whilst four of these types cause mild-to-moderate respiratory disease, the other three may cause more severe and possibly even fatal disease in vulnerable individuals particularly, with the most recent SARS-CoV-2 pandemic being associated with severe acute respiratory syndrome (SARS) in many infected people. The aim of the present study was to evaluate the potential of a unique low molecular weight dextran sulphate (LMW-DS) clinical stage drug, ILB(R), to inhibit infection of human cells by the NL63 coronavirus assessed by immunofluorescence of viral particles, and also to see if the drug directly blocked the interaction of the SARS-CoV-2 viral spike protein with the ACE2 receptor. Furthermore, we evaluated if ILB(R) could modulate the downstream consequences of viral infection including the reactive cytokine release from human microglia induced by various SARS-CoV-2 variant spike proteins. We demonstrated that ILB(R) blocked ACE2:spike protein interaction and inhibited coronaviral infection. ILB(R) also attenuated the omicron-induced release of pro-inflammatory cytokines, including TNF, from human microglia, indicating control of post-viral neuroinflammation. In conclusion, given the safety profile of ILB(R) established in a number of Phase I and Phase II clinical trials, these results highlight the potential of ILB(R) to treat patients infected with coronaviruses to both limit infectivity and attenuate the progression to severe disease. There is now an opportunity to translate these findings quickly by the clinical investigation of drug efficacy.

immunology↗

A clinical stage LMW-DS drug inhibits infection of human cells by Dengue, Zika and Yellow Fever viruses

The flavivirus family are responsible for the most abundant arboviral diseases of humans in terms of geographical distribution, morbidity and mortality; at least 2.5 billion people are at risk with, for example, an estimated 100-400 million Dengue infections a year. However, for infections by Dengue, Zika or Yellow Fever virus there are no effective anti-infective drug treatments nor for Dengue or Zika virus a safe effective vaccine and prevention at present focusses on vector (mosquito) control. Whilst symptoms from Dengue, Zika and Yellow Fever virus infection may be mild for some, they are very serious and life threatening for others. For instance, severe Dengue is a leading cause of hospitalisation and death among children and adults in Asian and Latin American countries. Likewise, Zika infection can have catastrophic consequences for pregnant women following the passing of the virus to their foetus with arising miscarriage or birth defects including microcephaly that can be fatal. The aim of the present study was to evaluate the potential of a unique low molecular weight dextran sulphate (LMW-DS) clinical stage drug, ILB(R), to inhibit infection of human cells by four serotypes of Dengue virus (DENV1-4), two strains of Zika virus (African and Asian) and Yellow Fever virus (vaccine strain YF17D) assessed by immunofluorescence of viral particles. ILB(R) potently inhibited infection by all the strains of Dengue, Zika and Yellow Fever virus in a concentration-dependent manner with IC50 for ILB(R) ranging from 31 to 343 g/ml. In conclusion, given the safety profile of ILB(R) established in a number of Phase I and Phase II clinical trials, these results highlight the potential of ILB(R) to treat patients infected with Dengue, Zika or Yellow Fever virus with the opportunity to translate the findings quickly by clinical investigation.

immunology↗

SARS-CoV-2 wildlife surveillance in Ontario and Quebec, Canada

BackgroundSevere acute respiratory syndrome coronavirus 2 (SARS-CoV-2), the virus responsible for the COVID-19 pandemic, is capable of infecting a variety of wildlife species. Wildlife living in close contact with humans are at an increased risk of SARS-CoV-2 exposure and if infected have the potential to become a reservoir for the pathogen, making control and management more difficult. ObjectiveTo conduct SARS-CoV-2 surveillance in urban wildlife from Ontario and Quebec, Canada, increasing our knowledge of the epidemiology of the virus and our chances of detecting spillover from humans into wildlife. MethodsUsing a One Health approach, we leveraged activities of existing research, surveillance, and rehabilitation programs among multiple agencies to collect samples from 776 animals from 17 different wildlife species between June 2020 and May 2021. Samples from all animals were tested for the presence of SARS-CoV-2 viral RNA, and a subset of samples from 219 animals across 3 species (raccoons, Procyon lotor; striped skunks, Mephitis mephitis; and mink, Neovison vison) were also tested for the presence of neutralizing antibodies. ResultsNo evidence of SARS-CoV-2 viral RNA or neutralizing antibodies was detected in any of the tested samples. ConclusionAlthough we were unable to identify positive SARS-CoV-2 cases in wildlife, continued research and surveillance activities are critical to better understand the rapidly changing landscape of susceptible animal species. Collaboration between academic, public and animal health sectors should include experts from relevant fields to build coordinated surveillance and response capacity.

pathology↗

Extracellular Thimet Oligopeptidase is Released with Extracellular Vesicles from Human Prostate Cancer Cells

Androgen signaling plays a central role in the development of prostate cancer. Androgen hormone synthesis is tightly governed by the hypothalamic-pituitary-gonadal (HPG) axis, including gonadotropin-releasing hormone (GnRH). Thimet oligopeptidase (TOP) is a biologically significant peptidase known to cleave GnRH and potentially regulate its activity. Thus, TOP can play an important role in the HPG axis through regulating the downstream production and release of gonadal steroid hormones, including androgens, which may further affect prostate cancer development. TOP is known to be secreted out to the extracellular space. Here, we report that extracellular TOP can be associated with extracellular vesicles (EVs). Western blot analysis of EVs isolated from PC3 or DU145 prostate cancer cells revealed that TOP protein is, indeed, carried by the EVs. Budding of EVs from stimulated PC3 prostate cancer cells can also be visualized by confocal microscopy. Significantly, the TOP enzyme carried by EVs is enzymatically active. The present study shows that EV-associated TOP is a novel form of this extracellular peptidase that may play a role in the disease progression of prostate cancer cells.

biochemistry↗