Search bioRxiv⌕ Search

Biology subjects

Markman, S.

Publications and source records attributed to Markman, S..

2 recordsLinked to original sources

Evidence for a reproductive sharing continuum in cooperatively breeding mammals and birds: consequences for comparative research

Extreme reproductive skew occurs when a dominant female/male monopolises reproduction within a group of multiple sexually mature females/males. It is sometimes considered an additional, restrictive criterion in the definition of cooperative breeding (i.e., when conspecifics provide parental care to other group members offspring). However, datasets that use this restrictive definition to classify species as cooperative breeders have two critical shortcomings. First, reproductive skew is systematically overestimated by including groups with a single sexually mature female/male when calculating the reproductive output of "dominant" females/males. Second, a lack of reporting on which species are classified based on limited data prevents accounting for uncertainty in classification. Considering these shortcomings, we show that extreme reproductive skew in multi-female and multi-male groups only occurs rarely in species previously classified as cooperative breeders using restrictive definitions (11 mammal species, 12 bird species). We further provide updated datasets on reproductive sharing in multi-female/male groups of cooperatively breeding mammals and birds that allow accounting for classification uncertainty. Our results demonstrate a reproductive sharing continuum even among those cooperatively breeding species argued to exhibit extreme reproductive skew. At the practical level, these findings call for significant changes in datasets that classify species by social systems. At the conceptual level, we suggest that reproductive skew should not be a defining criterion of cooperative breeding.

animal behavior and cognition↗

Single-cell atlas of mouse limb development reveals a complex spatiotemporal dynamics of skeleton formation

Limb development has long served as a model system for coordinated spatial patterning of progenitor cells. Here, we identify a population of naive limb progenitors and show that they differentiate progressively to form the skeleton in a complex nonconsecutive three-dimensional pattern. Single-cell RNA sequencing of the developing mouse forelimb revealed three progenitor states: naive, proximal and autopodial, as well as Msx1 as a marker for the naive progenitors. In vivo lineage tracing confirmed this role and localized the naive progenitors to the outer margin of the limb, along the anterior-posterior axis. Sequential pulse-chase experiments showed that the progressive transition of Msx1+ naive progenitors into proximal and autopodial progenitors coincides with their differentiation to Sox9+ chondroprogenitors, which occurs along all the forming skeletal segments. Indeed, tracking the spatiotemporal sequence of differentiation showed that the skeleton forms progressively in a complex pattern. These findings suggest a new model for limb skeleton development.

developmental biology↗