bioRxiv Science⌕ Search

Biology subjects

Kretzschmar, J.

Publications and source records attributed to Kretzschmar, J..

3 recordsLinked to original sources

Bidirectional neuronal migration coordinates retinal morphogenesis bypreventing spatial competition

While the design of industrial products is often optimized for the sequential assembly of single components, organismal development is hallmarked by the concomitant occurrence of tissue growth and organization. Often this means that proliferating and differentiating cells occur at the same time in a shared tissue environment that continuously changes. How cells adapt to architectural changes in order to prevent spatial interference remains unclear. To understand how cell movements important for growth and organization are orchestrated, we here study the emergence of photoreceptor neurons that occur during the peak of retinal growth using zebrafish, human tissue and human organoids. Quantitative imaging reveals that successful retinal morphogenesis depends on active bidirectional photoreceptor translocation. This leads to a transient transfer of the entire cell population away from the apical proliferative zone. This migration pattern is driven by distinct cytoskeletal machineries, depending on direction: microtubules are required for basal translocation, while actomyosin drives apical movement. Blocking photoreceptor translocation leads to apical overcrowding that hampers progenitor movements. Thus, photoreceptor migration is crucial to prevent competition for space and thereby allows concurrent tissue growth and lamination. This shows that neuronal migration, in addition to its canonical role in cell positioning, is involved in coordinating morphogenesis.

developmental biology↗

Diet and heat - one neuronal subset two responses

The Insulin signal cascade is one of the best studied metabolic circuits, and shows a remarkable high molecular and functional conservation across the animal kingdom. Insulin-producing cells respond directly to nutritional cues in circulation and receive modulatory input from connected neuronal networks. Neuronal control is rapid and integrates a wide range of variables including dietary change or environmental temperature. However, despite various detailed studies that demonstrated the potential of neuronal regulation the physiological relevance of this circuit remains elusive. In Drosophila, Insulin-like peptide 7 (dIlp7)-producing neurons are wired with Insulin-producing cells. We found a dual role for this neuronal subset: a.) activated dilp7-producing neurons are required to facilitate development at high temperatures, and if confronted with calorie-rich food that represses neuronal activity b.) their product, dIlp7, regulates Insulin signalling levels. Our work shows that Insulin-producing cells not simply integrate signals from circulating nutritional cues and neuronal inputs, but switch to neuronal control in response to dietary composition.

physiology↗

Systematic analyses of factors required for adhesion of Salmonella enterica serovar Typhimurium to corn salad (Valerianella locusta)

Salmonella enterica is a foodborne pathogen leading to gastroenteritis and is commonly acquired by consumption of contaminated food of animal origin. However, numbers of outbreaks linked to the consumption of fresh or minimally processed food of non-animal origin are increasing. New infection routes of S. enterica by vegetables, fruits, nuts and herbs have to be considered. This leads to special interest in S. enterica interactions with leafy products, e.g. salads, that are consumed unprocessed. The attachment of S. enterica to salad is a crucial step in contamination, but little is known about the bacterial factors required and mechanisms of adhesion. S. enterica possesses a complex set of adhesive structures whose functions are only partly understood. Potentially, S. enterica may deploy multiple adhesive strategies for adhering to various salad species, and other vegetables. Here, we systematically analyzed the contribution of the complete adhesiome, of LPS, and of flagella-mediated motility of S. enterica serovar Typhimurium (STM) in adhesion to corn salad. We deployed a reductionist, synthetic approach to identify factors involved in the surface binding of STM to leaves of corn salad with particular regard to the expression of all known adhesive structures using the Tet-on system. This work reveals the contribution of Saf fimbriae, type 1 secretion system-secreted BapA, an intact LPS, and flagella-mediated motility of STM in adhesion to corn salad leaves. Importance Human gastrointestinal pathogens are often transmitted by animal products, but recent outbreaks show increasing importance of vegetables as source of infection by pathogenic E. coli or Salmonella enterica. The mechanisms of binding of S. enterica to vegetables such as salad are only poorly understood. We established an experimental model system to systematically investigate the role of adhesive structures of S. enterica serovar Typhimurium in binding to corn salad leaves. The contributions of all members of the complex adhesiome, flagella, and O-antigen were evaluated. We identified that Saf fimbriae, type 1 secretion system-secreted BapA, an intact LPS, and flagella-mediated motility contribute to adhesion of Salmonella to corn salad leaves. These results will enable future investigations on factors contributing to contamination of vegetables under agricultural conditions.

microbiology↗