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A biosynthetic platform for antimalarial drug discovery
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ABSTRACT
Advances in synthetic biology have enabled production of a variety of compounds using bacteria as a vehicle for complex compound biosynthesis. Violacein, a naturally occurring indole pigment with antibiotic properties, can be biosynthetically engineered in
Escherichia coli
expressing its non-native synthesis pathway. To explore whether this synthetic biosynthesis platform could be used for drug discovery, here we have screened bacterially-derived violacein against the main causative agent of human malaria,
Plasmodium falciparum
. We show the antiparasitic activity of bacterially-derived violacein against the
P. falciparum
3D7 laboratory reference strain as well as drug-sensitive and resistant patient isolates, confirming the potential utility of this drug as an antimalarial. We then screen a biosynthetic series of violacein derivatives against
P. falciparum
growth. The demonstrated varied activity of each derivative against asexual parasite growth points to potential for further development of violacein as an antimalarial. Towards defining its mode of action, we show that biosynthetic violacein affects the parasite actin cytoskeleton, resulting in an accumulation of actin signal that is independent of actin polymerization. This activity points to a target that modulates actin behaviour in the cell either in terms of its regulation or its folding. More broadly, our data show that bacterial synthetic biosynthesis is a suitable platform for antimalarial drug discovery with potential applications in high-throughput and cost-effective drug screening with otherwise chemically-intractable natural products.
Title: A biosynthetic platform for antimalarial drug discovery
Description:
ABSTRACT
Advances in synthetic biology have enabled production of a variety of compounds using bacteria as a vehicle for complex compound biosynthesis.
Violacein, a naturally occurring indole pigment with antibiotic properties, can be biosynthetically engineered in
Escherichia coli
expressing its non-native synthesis pathway.
To explore whether this synthetic biosynthesis platform could be used for drug discovery, here we have screened bacterially-derived violacein against the main causative agent of human malaria,
Plasmodium falciparum
.
We show the antiparasitic activity of bacterially-derived violacein against the
P.
falciparum
3D7 laboratory reference strain as well as drug-sensitive and resistant patient isolates, confirming the potential utility of this drug as an antimalarial.
We then screen a biosynthetic series of violacein derivatives against
P.
falciparum
growth.
The demonstrated varied activity of each derivative against asexual parasite growth points to potential for further development of violacein as an antimalarial.
Towards defining its mode of action, we show that biosynthetic violacein affects the parasite actin cytoskeleton, resulting in an accumulation of actin signal that is independent of actin polymerization.
This activity points to a target that modulates actin behaviour in the cell either in terms of its regulation or its folding.
More broadly, our data show that bacterial synthetic biosynthesis is a suitable platform for antimalarial drug discovery with potential applications in high-throughput and cost-effective drug screening with otherwise chemically-intractable natural products.
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