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Biology subjects

Fleischmann, B.

Publications and source records attributed to Fleischmann, B..

2 recordsLinked to original sources

Spatiotemporal dynamics of CD73 in mouse retina under physiological conditions

Adenosine is essential to energy metabolism and neuromodulation in the central nervous system. The retina is a highly energy-demanding neural tissue, and dysregulation of adenosine signaling causes retinal diseases. However, the dynamics of ecto-5-nucleotidase (CD73), a key enzyme for extracellular adenosine generation, remain elusive. Here, we investigate its spatiotemporal profile from development to adulthood using two transgenic mouse lines. We found that CD73 is transiently expressed in the early astrocyte lineage (Embryonic day 16.5 to Postnatal day [P] 3), becomes prominent in the rod-photoreceptor lineage by P3, and appears in the inner nuclear layer from P7 onward. CD73 deletion delays rod-response recovery and shortens the implicit time in scotopic ERG under dim light. These findings indicate that light and other physiological cues influence CD73 expression, which has significant consequences for retinal function, thereby providing a foundation for exploring disease-related alterations in CD73 and designing therapies that restore adenosine homeostasis.

developmental biology↗

Deciphering rapid cell signaling and control of cell motility by reverse opto-chemical engineering

Cells transform complex environmental stimuli into physiological responses. For time-varying stimuli or motile cells, the perception of the environment depends on the temporal stimulus pattern and cell motion, respectively. Here we report a concept, "reverse optochemical engineering" (ROCE), that uses temporal light patterns and photo-triggers to expose cells to virtual sensory landscapes while recording in real time their physiological responses and motor behavior. We studied cyclic-nucleotide signaling in cell lines, sperm, olfactory neurons, and cardiomyocytes. The technique can be employed for remote control of motility by light. We reprogrammed sperm from a chemotactic to a phototactic cell that is attracted towards light. The method provides new opportunities to decipher the mechanisms and signaling molecules underlying rapid cellular computations, and thus reveal the wire diagram of cellular networks.

biophysics↗