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Biology subjects

Fisher, G. M.

Publications and source records attributed to Fisher, G. M..

3 recordsLinked to original sources

Thymidine kinase-independent click chemistry DNADetect™ probes as an EdU alternative for mammalian cell DNA labelling

Nucleoside analogues have been powerful tools to study DNA synthesis, cell cycle progression and cellular fate for decades. EdU (5-ethynyl-2'-deoxyuridine), which contains an alkyne handle that allows copper-catalyzed azide-alkyne cycloaddition (CuAAC) to a fluorescent azide in a "click" chemistry reaction, is one of the most frequently utilised nucleoside analogue probes. EdU is transported into cells by nucleoside transporters followed by phosphorylation by thymidine kinase, the first step in thymidine metabolism leading to DNA synthesis. As some organisms like malaria parasites lack the thymidine kinase enzyme and cannot be labelled by EdU or related thymidine analogue probes, we previously designed and validated DNADetect EdU analogues as chemical probes. These probes comprise a masked monophosphate on the 5'-hydroxyl group of the nucleoside sugar moiety that is metabolised directly to EdU monophosphate, bypassing the need for thymidine kinase. Here, we demonstrate that DNADetect probes can be used to label DNA in mammalian cells. DNADetect probes are incorporated into proliferating HeLa cells as efficiently as EdU and outcompeted by thymidine. Additionally, we implement a protocol for best practice use of metabolic chemical probes by using a specifically designed inactive control probe for each active probe. While this approach is commonly applied with chemical probes that modulate protein function, it is yet to be commonly applied with metabolic chemical probes.

cell biology↗

Thymidine kinase-independent click chemistry DNADetect probes for DNA proliferation assessment in malaria parasites

Metabolic chemical probes are small molecule reagents that utilise naturally occurring biosynthetic enzymes for in situ incorporation into biomolecules of interest. These reagents can be used to label, detect, and track important biological processes within living cells including protein synthesis, protein glycosylation and nucleic acid proliferation. A limitation of current chemical probes, which have largely focused on mammalian cells, is that they often cannot be applied to other organisms due to metabolic differences. For example, the thymidine derivative 5-ethynyl-2-deoxyuridine (EdU) is a gold standard metabolic chemical probe for assessing DNA proliferation in mammalian cells however is unsuitable for the study of malaria parasites due to Plasmodium species lacking the thymidine kinase enzyme that is essential for metabolism of EdU. Herein we report the design and synthesis of new thymidine-based probes that sidestep the requirement for a thymidine kinase enzyme in Plasmodium. Two of these DNADetect probes exhibit robust labelling of replicating asexual intraerythrocytic P. falciparum parasites, as determined by flow cytometry using copper catalysed azide-alkyne cycloaddition (CuAAC) to a fluorescent azide. The DNADetect chemical probes are synthetically accessible and thus can be made widely available to researchers as tools to further understand the biology of different Plasmodium species, including laboratory lines and clinical isolates.

microbiology↗

Discovery of 1,3,4-oxadiazoles with slow-action activity against Plasmodium falciparum malaria parasites

To achieve malaria eradication, new preventative agents that act differently to front-line treatment drugs are needed. To identify potential chemoprevention starting points we screened a sub-set of the CSIRO Australia Compound Collection for compounds with slow-action in vitro activity against Plasmodium falciparum. This work identified N,N-dialkyl-5-alkylsulfonyl-1,3,4-oxadiazol-2-amines as a new antiplas-modial chemotype (e.g., 1 96 h IC50 550 nM) with a different action to delayed-death slow-action drugs. Structure activity relationship analysis of analogues identified multiple compounds with potent and selective in vitro activity against drug-sensitive and multi-drug resistant Plasmodium parasites (e.g., 31 and 32 96 h IC50 <40 nM; SI >2,500). However subsequent studies in mice with lead compound 1, which had the best microsomal stability of the compounds assessed, demonstrated rapid clearance (T1/2 <1.6 h) and poor oral in vivo efficacy. This indicates that improvements in the pharmacokinetic profile of N,N-dialkyl-5-alkylsulfonyl-1,3,4-oxadiazol-2-amines would be needed for the development of this chemotype for malaria chemoprophylaxis.

microbiology↗