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Langenfeld, K.

Publications and source records attributed to Langenfeld, K..

2 recordsLinked to original sources

Dissection of the Fgf8 regulatory landscape by in vivo CRISPR-editing reveals extensive inter- and intra-enhancer redundancy

Developmental genes are often regulated by multiple elements with overlapping activity. Yet, in most cases, the relative function of those elements and their contribution to endogenous gene expression remain uncharacterized. Illustrating this situation, distinct sets of enhancers have been proposed to direct Fgf8 in the limb apical ectodermal ridge (AER) and the midbrain-hindbrain boundary (MHB). Using in vivo CRISPR/Cas9 genome engineering, we functionally dissect this complex regulatory ensemble and demonstrate two distinct regulatory logics. In the AER, the control of Fgf8 expression appears extremely distributed between different enhancers. In contrast, in the MHB, one of the three active enhancers is essential while the other two are dispensable. Further dissection of the essential MHB enhancer revealed another layer of redundancy and identified two sub-parts required independently for Fgf8 expression and formation of midbrain and cerebellar structures. Interestingly, cross-species transgenic analysis of this enhancer suggests changes of the organisation of this essential regulatory node in the vertebrate lineage.

developmental biology

LITESEC-T3SS - Light-controlled protein delivery into eukaryotic cells with high spatial and temporal resolution

Many bacteria employ a type III secretion system (T3SS), also called injectisome, to translocate proteins into eukaryotic host cells through a hollow extracellular needle. The system can efficiently transport heterologous cargo, which makes it a uniquely suited tool for the translocation of proteins into eukaryotic cells. However, the injectisome indiscriminately injects proteins into any adjoining eukaryotic cell, and this lack of target specificity currently limits its application in biotechnology and healthcare. In this study, we exploit the dynamic nature of the T3SS to control protein secretion and translocation into eukaryotic cells by light. By combining optogenetic interaction switches with the dynamic cytosolic T3SS component SctQ, the cytosolic availability of SctQ and in consequence T3SS-dependent effector secretion can be regulated by external light. The resulting system, which we call LITESEC-T3SS (Light-induced translocation of effectors through sequestration of endogenous components of the T3SS), allows rapid, specific, and reversible activation or deactivation of the T3SS upon illumination. We demonstrate the application of the system for light-regulated translocation of a heterologous reporter protein into cultured eukaryotic cells. LITESEC-T3SS represents a new method to achieve unparalleled spatial and temporal resolution for the controlled protein translocation into eukaryotic host cells.

microbiology