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Klemmer, A.

Publications and source records attributed to Klemmer, A..

4 recordsLinked to original sources

The genetic architecture of the pepper metabolome provides insights into the regulation of capsianoside biosynthesis

Capsicum (pepper) is among the most economically important species worldwide, the fruit accumulates specialized metabolites with essential roles in plant environmental interaction and potential health benefits. However, the underlying genetic basis of their biosynthesis remains largely unknown. In this study, we developed and assessed both wild genetic variance and a bespoke mapping population to determine the genetic architecture of the pepper metabolome. The genetic analysis provided over 30 metabolic quantitative trait loci (mQTL) for over 1100 metabolites. We identified 92 candidate genes involved in various mQTL. Among the identified loci, we described and validated by transient overexpression a domestication gene cluster of eleven UDP-glycosyltransferases involved in monomeric capsianoside biosynthesis. We additionally constructed the biosynthetic reactions and annotated the genes involved in capsianoside biosynthesis in pepper. Given that differential glycosylation of acyclic diterpenoid glycosides contributes to plant resistance and acts as anticancer agents in humans, our data provide new insight, and resources for better understanding the biosynthesis of beneficial natural compounds to improve human health.

genetics↗

Malaria parasite proliferation implicates a resource-dependent counter mechanism

Malaria is caused by the rapid proliferation of Plasmodium parasites in patients and disease severity correlates with the number of infected red blood cells in circulation. Parasite multiplication within red blood cells is called schizogony and occurs through an atypical multinucleated cell division mode. The mechanisms regulating the number of daughter cells produced by a single progenitor are poorly understood. We investigated underlying regulatory principles by quantifying nuclear multiplication dynamics in Plasmodium falciparum and knowlesi using super-resolution time-lapse microscopy. This revealed that the number of daughter cells was statistically independent of the duration of the nuclear division phase, which confirms that a counter mechanism, rather than a timer, regulates multiplication. P. falciparum cell volume at the start of nuclear division correlated with the final number of daughter cells. As schizogony progressed, the nucleocytoplasmic volume ratio, which has been found to be constant in all eukaryotes characterized so far, increased significantly, possibly to accommodate the exponentially multiplying nuclei. Depleting nutrients by dilution of culture medium caused parasites to produce less merozoites and reduced proliferation but did not affect cell volume or total nuclear volume at the end of schizogony. Our findings suggest that the counter mechanism implicated in malaria parasite proliferation integrates extracellular resource status to modify progeny number during blood stage infection.

cell biology↗

An Sfi1-like centrin-interacting centriolar plaque protein affects nuclear microtubule homeostasis.

Malaria-causing parasites achieve rapid proliferation in human blood through multiple rounds of asynchronous nuclear division followed by daughter cell formation. Nuclear divisions critically depend on the centriolar plaque, which organizes intranuclear spindle microtubules. The centriolar plaque consists of an extranuclear compartment, which is connected via a nuclear pore-like structure to a chromatin-free intranuclear compartment. Composition and function of this non-canonical centrosome remain largely elusive. Centrins, which reside in the extranuclear part, are among the very few centrosomal proteins conserved in Plasmodium falciparum. Here we identify a novel centrin-interacting centriolar plaque protein. Conditional knock down of this Sfi1-like protein (PfSlp) caused a growth delay in blood stages, which correlated with a reduced number of daughter cells. Surprisingly, intranuclear tubulin abundance was significantly increased, which raises the hypothesis that the centriolar plaque might be implicated in regulating tubulin levels. Disruption of microtubule homeostasis caused polymerization of excess microtubules and aberrant mitotic spindles. Time-lapse microscopy revealed that this prevented or delayed spindle extension. Our study thereby identifies a novel extranuclear centriolar plaque factor and establishes a functional link to the intranuclear compartment of this divergent eukaryotic centrosome.

cell biology↗

Creating a bottleneck: Robust LC3B lipidation analysis by adjusting autophagic flux with low concentrations of Bafilomycin A1

Autophagic flux can be quantified based on the accumulation of lipidated LC3B in the presence of late-stage autophagy inhibitors. This method has been widely applied to identify novel compounds that activate autophagy. Here we scrutinize this approach and show that bafilomycin A1 (BafA) but not chloroquine is suitable for flux quantification due to the stimulating effect of chloroquine on non-canonical LC3B-lipidation. Significant autophagic flux increase by rapamycin could only be observed when combining it with BafA concentrations not affecting basal flux, a condition which created a bottleneck, rather than fully blocking autophagosome-lysosome fusion, concomitant with autophagy stimulation. When rapamycin was combined with saturating concentrations of BafA, no significant further increase of LC3B lipidation could be detected over the levels induced by the late-stage inhibitor. The large assay window obtained by this approach enables an effective discrimination of autophagy activators based on their cellular potency. To demonstrate the validity of this approach, we show that a novel inhibitor of the acetyltransferase EP300 activates autophagy in a mTORC1-dependent manner. We propose that the creation of a sensitized background rather than a full block of autophagosome progression is required to quantitatively capture changes in autophagic flux.

cell biology↗