Skip to main content
Health & Medicine

A unifying framework for the evolution of metazoa and social insects, two major evolutionary transitions.

| Source: Proceedings of the National Academy of Sciences of the United States of America

The evolution of life is characterized by major transitions, i.e., the evolution of new targets of selection (e.g., prokaryotes, eukaryotes, multicellular organisms, social insect colonies). They arose when preexisting lower-level units cooperated and gave up the capability to reproduce so that reproductive success is now achieved at the new, joint, higher unit. Currently, increasing confusion exists about major transition in evolution (MTE) that hampers progress in this fundamental research fie

The evolution of life is characterized by major transitions, i.e., the evolution of new targets of selection (e.g., prokaryotes, eukaryotes, multicellular organisms, social insect colonies). They arose when preexisting lower-level units cooperated and gave up the capability to reproduce so that reproductive success is now achieved at the new, joint, higher unit. Currently, increasing confusion exists about major transition in evolution (MTE) that hampers progress in this fundamental research field. Misconceptions partly arose due to inadequate evolutionary reasoning. In addition, pivotal recent work shows considerable diversity in organismality in metazoan and social insect systems that makes clear-cut distinctions of transitions more difficult and that challenges our classical understanding of MTEs. Applying evolutionary reasoning, we develop three categories that all metazoan and social insect systems can be grouped into. The categories are defined by the reproductive potential of altruistic level units and how they can realize it (i.e., via independent reproduction as dispersing propagules or only through reproduction within the higher-level unit). These categories capture the variation in diversity in organismality that is crucial when analyzing potential major transitions, but that was always hard to grasp. This unifying conceptual framework advances our understanding of MTEs. It will enable comparative analyses within as well as across MTEs, to answer fundamental questions about the evolution of life.

Read the original source →

Related Stories

Health & Medicine

PLASTID ENVELOPE ION CHANNELS (PEC1/2) link Ca 2+ and jasmonic acid signaling in plant cells.

Plants constantly encounter adverse environmental interactions. One organelle is particularly specialized in stress signaling and phytohormone synthesis: the plastid. Calcium (Ca 2+ ), a key second messenger, is known to intersect with cellular phytohormone signaling networks. While cytosolic Ca 2+ dynamics have been studied extensively, the physiological relevance of stromal Ca 2+ transients and the identity of channels mediating rapid Ca 2+ flux into plastids remain largely unexplored. In this

Continue reading
Health & Medicine

Detection of "hidden" mitotic crossovers by long-read DNA sequencing.

Mitotic crossovers in diploid organisms are usually detected by looking for loss of heterozygosity (LOH) for a marker. Assuming the crossover occurs between two duplicated chromatids, a single reciprocal crossover will result in two recombinant chromatids and two nonrecombinant chromatids. LOH will only be observed when a recombinant chromatid cosegregates with a nonrecombinant chromatid. Cells containing both recombinant chromosomes will not result in LOH. Below, we use long-range DNA sequencin

Continue reading
Health & Medicine

Amino acid homeostasis by CORVET/HOPS: A metabolic and stress resilience checkpoint for T cells.

Amino acid sufficiency is critical for T cell metabolic reprogramming, yet how T cells maintain amino acid homeostasis remains poorly defined. Here, we identify the CORVET and HOPS (CORVET/HOPS) tethering complexes as essential upstream regulators. In activated T cells, they sustain intracellular amino acid levels by promoting macropinocytosis to acquire extracellular nutrients. This function enables dual signaling outcomes: suppression of the integrated stress response (ISR) and activation of m

Continue reading
Health & Medicine

Bright monomeric fluorescent protein elite-niRFP704 for two-channel near-infrared STED nanoscopy.

The near-infrared (NIR) spectral region is attractive for live-cell imaging, due to low autofluorescence and reduced phototoxicity. Some phytochrome-derived fluorescent proteins absorb and emit fluorescence in the NIR, but have short fluorescence lifetimes and relatively low quantum yields, requiring higher laser powers thus limiting their usefulness for live-cell superresolution microscopy. Using the bacterial phytochrome miRFP703 as a template, we screened for variants with longer fluorescence

Continue reading
Health & Medicine

Quantitative nanoscale imaging shows peptide-MHC I complexes are monomeric and spatially regulated in human dendritic cells.

Major histocompatibility complex class I (MHC I) molecules present antigenic peptides to cytotoxic T cells, a process central to immune surveillance. However, the nanoscale spatial organization of peptide-MHC I (pMHC I) on human dendritic cells (DCs), key initiators of cytotoxic T cell responses, remains largely unexplored. Here, we combine high-affinity soluble T cell receptors with DNA-based point accumulation for imaging in nanoscale topography (DNA-PAINT) to quantitatively map and count defi

Continue reading