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Ferro, M.

Publications and source records attributed to Ferro, M..

2 recordsLinked to original sources

Deciphering Photosynthetic Protein Networks: A Crosslinking-MS Strategy for Studying Functional Thylakoid Membranes

Photosynthesis, which sustains life on Earth, depends on organized and yet adaptable protein assemblies embedded in specialized membranes known as thylakoids. Understanding how these complexes interact and reorganize within functional photosynthetic membranes is essential to reveal the molecular basis of energy conversion in cells. Here, we present an improved crosslinking mass spectrometry strategy that captures native protein interactions in photosynthetically active thylakoid membranes from Arabidopsis thaliana and Spinacia oleracea. By monitoring photosynthetic performance during crosslinking, we show that electron transport remains active, allowing structural analysis under physiological conditions. Moreover, we show that trimethylphenylammonium chloride (TMPAC) as an adjuvant charged compound does not impair physiological activity, while boosting and diversifying crosslink identifications. Mapping crosslinks onto known structures confirms the integrity of major photosynthetic complexes and uncovers previously uncharacterized assemblies involving regulatory and structural proteins. Integration with structural modeling and interaction network analysis identifies novel protein players within the photosynthetic machinery, providing molecular insights into their potential roles. This approach offers a broadly applicable framework for studying membrane protein organization and dynamics in functional bioenergetic systems. Significance StatementPhotosynthesis relies on dynamic protein interactions within thylakoid membranes, yet capturing these networks under physiological conditions remains challenging. We establish a crosslinking mass spectrometry workflow that maps native protein interactions in plant thylakoids while preserving photosynthetic activity. By bridging structural and functional biology, this approach enables in situ exploration of membrane protein networks and advances our understanding of photosynthetic regulation

plant biology↗

Poke And Delayed Drink Intertemporal Choice Task (POKE-ADDICT): an open-source behavioral apparatus for intertemporal choice testing in rodents

Advancements in neuroscience research present opportunities and challenges, requiring substantial resources and funding. To address this, we describe here "Poke And Delayed Drink Intertemporal Choice Task (POKE-ADDICT)", an open-source, versatile, and cost-effective apparatus for intertemporal choice testing in rodents. This allows quantification of delay discounting (DD), a cross-species phenomenon observed in decision making which provides valuable insights into higher-order cognitive functioning. In DD, the subjective value of a delayed reward is reduced as a function of the delay for its receipt. Using our apparatus, we implemented an effective intertemporal choice paradigm for the quantification of DD based on an adjusting delayed amount (ADA) algorithm using mango juice as a reward. Our paradigm requires limited training and can be directly translated to human subjects using monetary rewards. Our apparatus comprises a few 3D-printed parts and inexpensive electrical components, including a Raspberry Pi control unit. Furthermore, it is compatible with several in vivo procedures and the use of nose pokes instead of levers allows for faster task learning. Beside the main application described here, the apparatus can be further extended to implement other behavioral tests and protocols, including standard operant conditioning. In conclusion, we describe a versatile and cost-effective design based on Raspberry Pi that can support research in animal behavior, decision making and, more specifically, delay discounting.

animal behavior and cognition↗