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Biology subjects

Cameron, D. D.

Publications and source records attributed to Cameron, D. D..

4 recordsLinked to original sources

Adaptation to free-living drives loss of beneficial endosymbiosis through metabolic trade-offs

Symbioses are widespread (1) and underpin the function of diverse ecosystems (2-6), but their evolutionary stability is challenging to explain (7,8). Fitness trade-offs between contrasting intracellular and extracellular niches could act to stabilise endosymbioses because adaptation to either niche is predicted to reduce fitness in the alternate niche, thus reinforcing symbiosis (8,9). Here, we experimentally evolved four diverse Chlorella green algal endosymbionts of Paramecium bursaria to free-living conditions supplying either an amino acid, as provisioned by hosts (10,11), or nitrate, as available in freshwater (12), as the sole nitrogen source. Experimental algal populations adapted to free-living environments, generally increasing in population density and cellular chlorophyll content over time. In one of the four endosymbiont strains, adaptation to the nitrate free-living environment, but not the amino acid environments, drove the loss of fitness benefits to the host in reconstituted symbioses. This loss was not associated with reduced ability to grow on host-provisioned amino acids, nor lost ability to release the sugars provisioned to the host (10,13). Genome sequencing of evolved algal lines revealed genomic divergence between nitrate-adapted and amino acid-adapted lines, affecting genes involved with metabolic organisation and intracellular resource transport. Untargeted metabolomic profiling further showed extensive changes to membrane remodelling and turnover in N-evolved lines. Together, our data support a role for metabolic trade-offs driving divergence between contrasting intracellular and extracellular niches, with nitrogen as a key environmental axis driving divergence. Fitness trade-offs may, therefore, be a general, simple mechanism acting to reinforce symbiosis, contributing to evolutionary stability.

evolutionary biology↗

De novo genome sequence assembly of the model algal endosymbiont Micractinium conductrix derived from its host Paramecium bursaria 186b

Endosymbiosis is a major driver of evolutionary innovation and underpins the function of diverse ecosystems. The origins and evolution of endosymbiosis are challenging to study experimentally due to the short-lived culturability of many microbial strains derived from endosymbiotic interactions. The facultative endosymbiosis between the ciliate, Paramecium bursaria, and the green alga, Micractinium conductrix (Chlorellaceae, Trebouxiophyceae), is ecologically widespread and has emerged as a powerful lab-tractable model system. This endosymbiosis is founded upon a reciprocal nutrient exchange, but each of the species can be cultured independently enabling quantification of symbiotic fitness effects, new partnerships to be generated in the lab, and co-associations to be subject to experimental evolution. To date, evolve-and-resequence approaches have been limited due to a lack of high-quality genome assemblies enabling gene variants to be identified. Here, we report a near telomere-to-telomere genome assembly for M. conductrix 186b, using a range of sequencing technologies. Comparative analysis shows that this is one of the most complete Chlorellaceae algal genome assemblies available to date. To aid accurate gene calling and annotation we conducted both RNAseq and Iso-Seq transcriptome sequencing experiments. Collectively these omics datasets will facilitate: i) comparative genomics studies of endosymbiont evolution, ii) evolve-and-resequence experiments, iii) genome-scale metabolic modelling studies, and iv) identification of targets for genetic modification experiments and biotechnological applications. Significance statementEndosymbiosis, where one species, the endosymbiont, lives inside the cell of another species, the host, has played a key role in evolution of complex life. However, the origins and evolution of obligate endosymbioses are often challenging to study because the key events are hidden deep in evolutionary time. Facultative microbial endosymbioses, such as between the ciliate Paramecium bursaria and the green alga Micractinium conductrix, offer experimentally tractable model systems where interacting species can be grown independently or in association allowing studies of the origin, evolution and fitness effects of symbiosis. Here we report the genome sequence for M. conductrix from P. bursaria 186b, enabling genomic studies of the evolution of endosymbiosis and simplifying gene target acquisition for microbe engineering and biotechnological applications.

genomics↗

Regenerative agriculture effects on biomass, drought resilience and 14C-photosynthate allocation in wheat drilled into ley compared to disc or ploughed arable soil

Regenerative agriculture practices including leys and no-tillage facilitate biological reassembly of soil aggregates, increasing water, carbon and nutrient storage, but how this effects crop biomass, photosynthate partitioning, and drought resilience is unclear. To address this, we took monoliths growing semi-dwarf and taller wheat genotypes from 3-year plots that were ploughed or disc cultivated, or direct-drilled into a grass-clover ley and applied 35 kg N ha-1. Half the monoliths received a spring drought, then all were watered and the wheat 14CO2 pulse-labelled at stem elongation. The ley soil had lower bulk density, stored more water, and the taller wheat genotype maintained 8-fold higher proportion of water-stable macroaggregates despite unexpectedly having the smaller root biomass. Yields on the ley soil (3.74 t ha-1) were 77% -123% higher than on ploughed and disc cultivated soils, and unaffected by genotype or drought, despite its >70% reduction in root biomass. Of the 14C initially retained in wheat, 72% was in shoots, with root allocation decreasing by 75-90% in droughted ley soil, and at harvest soil retained <1% of the 14C, with significantly lower values for taller wheat, and ley. We conclude that soil health regeneration in the ley enhanced wheat yields, but reduced photosynthate allocation to root biomass under drought. Although taller wheat maintained better macroaggregation in ley soil, this was not explained by root biomass or photosynthate allocation and unexpectedly failed to increase soil 14C sequestration. We find no evidence that ley regeneration of macroaggregation enhances soil C sequestration under wheat, despite higher yields.

plant biology↗

Immune-like glycan-sensing and horizontally-acquired glycan-processing orchestrate host control in a microbial endosymbiosis

Endosymbiosis was a key factor in the evolution of eukaryotic cellular complexity. Yet the mechanisms that allow host regulation of intracellular symbionts, a pre-requisite for stable endosymbiosis and subsequent organelle evolution, are largely unknown. Here, we describe an immune-like glycan-sensing/processing network, partly assembled through horizontal gene-transfers (HGTs), that enables Paramecium bursaria to control its algal endosymbionts. Using phylogenetics, RNA-interference (RNAi), and metabolite exposure experiments, we show that P. bursaria regulates endosymbiont destruction using glycan-sensing/processing - a system that includes a eukaryotic-wide chitin-binding chitinase-like protein (CLP) localized to the host phago-lysosome. RNAi of CLP alters expression of eight glycan-processing genes, including two prokaryote-derived HGTs, during endosymbiont destruction. Furthermore, glycan-sensing/processing dynamically regulates endosymbiont number in P. bursaria, plasticity crucial to maximize host fitness across ecological conditions. CLP is homologous to a human phagocyte-associated innate immune factor, revealing how immune functions can be alternatively adapted and expanded, partly through HGT, enabling endosymbiotic control. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=186 HEIGHT=200 SRC="FIGDIR/small/613017v2_ufig1.gif" ALT="Figure 1"> View larger version (77K): org.highwire.dtl.DTLVardef@13aeaaorg.highwire.dtl.DTLVardef@302e6dorg.highwire.dtl.DTLVardef@138224forg.highwire.dtl.DTLVardef@54aca8_HPS_FORMAT_FIGEXP M_FIG C_FIG

evolutionary biology↗