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Leva, T.

Publications and source records attributed to Leva, T..

3 recordsLinked to original sources

Over four months of ethylene production: Unlocking the potential of solid-state photosynthetic cell factories

This study demonstrates the feasibility of employing solid-state photosynthetic cell factories (solid-state PCFs) as a proof-of-concept platform for long-term ethylene production using sodium bicarbonate as the carbon source. Solid-state PCFs were constructed by entrapping Synechocystis sp. PCC 6803 (efe mutant, strain S5), specifically engineered for ethylene biosynthesis, within TEMPO-oxidized cellulose nanofiber (TCNF) matrices. Two distinct formulations were tested: (i) Ca2+-PVA-TCNF, in which TCNF was crosslinked with Ca2+ and polyvinyl alcohol to produce hydrogel films approximately 200 m thick; and (ii) an all-polysaccharide-based Ca2+-MLG-TCNF formulation, in which TCNF was crosslinked with Ca2+ and mixed-linkage glucan. The latter films were fabricated using an osmotic dehydration approach, yielding mechanically robust, fully biodegradable structures with a thickness of approximately 2 mm. The integration of engineered cells with TCNF matrices created a biocatalytic system that improved the distribution of light, nutrients, and substrates to the cells, while facilitating ethylene separation, thereby supporting the fitness of immobilized cells and enhancing their metabolic performance. Using a custom-designed photobiofilm reactor optimized for semi-wet cultivation, the solid-state PCFs sustained ethylene production for over four months, representing the longest reported continuous ethylene production by cyanobacteria to date. Notably, the solid-state PCFs achieved up to a twofold increase in ethylene yield compared to the continuous-flow suspension culture. Importantly, the suspension-based system also represented the first demonstration of four-month ethylene production under continuous-flow operation. In addition, biodegradability assessments confirmed the environmental compatibility of the TCNF-based matrices, with the all-polysaccharide formulation being particularly advantageous due to its exclusively nature-based composition. Together, these results demonstrate the potential of solid-state PCFs as a scalable and sustainable platform for photosynthetic ethylene production.

bioengineering↗

The spatial representation of temperature in the thalamus

Although distinct thalamic nuclei encode sensory information for almost all sensory modalities, the existence of a thalamic representation of temperature with a role in thermal perception remains unclear. To address this, we performed high-density electrophysiological recordings across the entire forelimb somatosensory thalamus in awake mice, and identified an anterior and a posterior representation of temperature that spans three thalamic nuclei. We found that these parallel representations show fundamental differences in the cellular encoding of temperature which reflects their cortical output targets. While the anterior representation encodes cool only and the posterior both cool and warm; in both representations cool was more densely represented and showed shorter latency, more transient responses as compared to warm. Moreover, thalamic inactivation showed a major role in thermal perception. Our comprehensive dataset identifies the thalamus as a key structure in thermal processing and highlights a novel posterior pathway in the thalamic representation of warm and cool.

neuroscience↗

Brain-wide connectivity map of mouse thermosensory cortices

In the thermal system, skin cooling is represented in the primary somatosensory cortex (S1) and the posterior insular cortex (pIC). Whether S1 and pIC are nodes in anatomically separated or overlapping thermal sensorimotor pathways is unclear, as the brain-wide connectivity of the thermal system has not been mapped. We address this using functionally targeted, dual injections of anterograde viruses or retrograde tracers into S1 and pIC. Our data show that inputs to S1 and pIC originate from two non-overlapping populations, supporting the existence of parallel input pathways. While outputs from S1 and pIC were more widespread and share a number of cortical and subcortical regions, within target structures axonal projections were often separable. We observed a high degree of reciprocal connectivity with thalamic and cortical regions from both S1 and pIC, but output to the mid- and hind-brain was unidirectional. Notably, pIC showed exclusive connectivity with regions associated with thermal processing. Together, these data indicate that cutaneous thermal information is routed to the cortex via multiple, parallel streams of information which are forwarded to overlapping downstream regions for the binding of complex somatosensory percepts and integration with ongoing behavior.

neuroscience↗