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Laker, B.

Publications and source records attributed to Laker, B..

4 recordsLinked to original sources

Molecular sources of monoterpenoid chemodiversity in the Asteraceae Tanacetum vulgare suggest a new model for the evolution of specialized metabolism

Highly diversified specialized metabolism enables plant communication with pollinators, herbivores, and protectors1-4. Its chemodiversity, under which evenness, richness and variation is summarized5-7, includes many compounds without known function1-4 and presents an evolutionary conundrum about how and what is selected for8,9. Due to its complexity, it is frequently unknown how it is encoded in genomes. To produce population level chemodiversity, the traits need to allow for highly chemodiverse and highly specific individuals in the same population. Here we use metabolomics, transcriptomics, and genomics combined with field analyses and functional assays of monoterpene synthases in the Asteraceae Tanacetum vulgare (tansy) and identify forces which produce high population level chemodiversity: selection for product specificity in enzymes, loss-of-expression alleles, absence variation, and specialized metabolism islands drive individuals towards low chemodiversity while unlinked enzyme loci, expression variation alleles, presence variation, and de novo enzyme evolution enable high individual chemodiversity. Since the molecular data suggests selection for mechanisms that increase chemodiversity itself at the population level, the screening hypothesis which posited plants produce a reservoir of diverse chemicals prior to selection8 should be replaced by a chemodiversity selection hypothesis. The results demonstrate that, in addition to plant protection via individual chemicals with known targeting mechanisms for predators, being different from your neighbors even if you are closely related is likely an important element in plant protection.

plant biology↗

Glycogen deficiency impairs diurnal energy metabolism and cell division in Synechocystis

Diurnal changes in light availability are a defining feature of life on Earth. Photoautotrophic organisms therefore store reduced carbon during the day to sustain energy metabolism at night. In cyanobacteria, glycogen is the primary carbon storage compound and supports both energy homeostasis and stress responses. Although glycogen-deficient Synechocystis strains have been studied previously, how these mutants cope with the loss of the major daytime carbon sink and can sustain themselves during the night remains unclear. Using single-cell microfluidics, transcriptomics, and metabolomics, we show that {Delta}glgC mutants exhibit pronounced light sensitivity. At sub-lethal light intensities, daytime transcriptional responses are dominated by downregulation of photosynthesis-related genes, likely preventing NADPH overaccumulation in the absence of a carbon sink. During the night, mutants display severe energy limitation, characterized by reduced ATP levels, altered redox balance, and depletion of central carbon intermediates. In contrast, fumarate and malate accumulate, indicating enhanced respiratory flux through succinate dehydrogenase. These metabolic constraints lead to extended lag phases and delayed cell divisions after the onset of light, demonstrating that glycogen-deficient cells fail to efficiently reinitiate growth after dawn. Overall, our results as a snapshot of the initial response to diurnal regimes highlight glycogen as a central integrator of diurnal physiology in Synechocystis, coordinating energy metabolism, redox balance, and cell division, with implications for metabolic robustness and the evolutionary constraints shaping (endo)symbiosis. Short summaryGlycogen deficiency disrupts day-night energy and redox homeostasis in Synechocystis, revealing constraints on growth, division, and symbiotic potential.

plant biology↗

Tuning into xanthan: A conserved yet flexible polysaccharide utilization system in Microbacterium

Bacteria encounter structurally complex extracellular polysaccharides in natural environments, yet the regulatory and evolutionary basis of their utilization remains poorly understood. Here, we isolated a soil-derived Microbacterium strain, named Microbacterium xanthanicum UB-LE1, that grows on xanthan as the sole carbon source. We dissected the genetic and regulatory architecture underlying this capability. Genome sequencing combined with transcriptomic and proteomic profiling uncovered a discrete, strongly inducible regulon associated with xanthan utilization, encoding 23 proteins with five secreted proteins and three candidate transcriptional regulators. DNA-affinity purification sequencing confirmed two regulators binding to operons within the xanthan utilization locus. Comparative genomics across the Microbacteriaceae revealed conserved and lineage-specific features of this system and supports recent acquisition and modular integration of the locus, with at least two predominant architectural variants possibly shaped by substrate availability and ecological specialization. Coordinated induction at both the transcript and protein levels, together with two experimentally validated regulators, points to tight regulatory control of complex polysaccharide degradation in Microbacterium xanthanicum UB-LE1. Together, these findings provide mechanistic and evolutionary insight into how bacteria adapt to complex extracellular carbohydrates, expand current knowledge of xanthan turnover in microbial ecosystems, and establish a framework for exploring the emergence and diversification of specialized polysaccharide utilization pathways across bacterial taxa. IMPORTANCEMicroorganisms are central drivers of carbon turnover in soils and other terrestrial ecosystems, determining the availability of nutrients and shaping microbial community structure. A significant portion of soil carbon is contained in extracellular polysaccharides, yet the pathways by which microorganisms degrade these complex polymers remain poorly understood. Xanthan, a structurally complex and widely produced microbial exopolysaccharide, represents a persistent and largely overlooked carbon pool. By dissecting the genetic, regulatory, and evolutionary basis of xanthan utilization in Microbacterium xanthanicum UB-LE1, this study advances our understanding of how soil bacteria adapt to complex extracellular carbohydrates and how substrate availability shapes the emergence and diversification of specialized metabolic pathways. Importantly, the identification of additional xanthan-active enzymes and regulatory components in M. xanthanicum UB-LE1 opens opportunities for targeted modification of xanthan structure and properties, paving the way for new biotechnological applications in food, materials, and industrial biotechnology, while linking microbial ecology to functional innovation.

microbiology↗

The Marchantia pangenome reveals ancient mechanisms of plant adaptation to the environment

Plant adaptation to a terrestrial life 450 million years ago played a major role in the evolution of life on Earth. This shift from an aquatic environment has been mostly studied by focusing on flowering plants. Here, we gathered a collection of 133 accessions of the non-vascular plants Marchantia polymorpha and studied its intraspecific diversity using selection signature analyses, genome-environment association study and a gene-centered pangenome. We identified adaptive features shared with flowering plants, such as peroxidases or nucleotide-binding and leucine-rich repeat (NLR), which likely played a role in the adaptation of the first land plants to the terrestrial habitat. The M. polymorpha pangenome also harbored lineage-specific accessory genes absent from seed plants. We conclude that different land plants lineages still share many elements from the genetic toolkit evolved by their most recent common ancestor to adapt to the terrestrial habitat, refined by lineage specific polymorphisms and gene family evolutions.

plant biology↗