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Ijaz, R.

Publications and source records attributed to Ijaz, R..

2 recordsLinked to original sources

Spatial learning-specific remodeling of the hippocampal palmitoylome

Protein S-palmitoylation is a reversible lipid modification that regulates protein trafficking, membrane association, and synaptic signaling, yet its role in learning-induced neuronal plasticity remains incompletely understood. Here, we investigated how spatial learning remodels the hippocampal palmitoylome in rats trained in the Morris water maze using short-term (STT; one session, 15 trials; probe at 1 h) or long-term (LTT; four sessions over four days; probe at 24 h) paradigms. Palmitoylated proteins were profiled by acyl-biotin exchange coupled with tandem mass tag labeling and LC-MS/MS. We identified 5,260 proteins, including 763 palmitoylated species. Spatial learning induced extensive remodeling of protein S-palmitoylation, with markedly greater changes after STT than LTT. Using yoked controls, we distinguished palmitoylation changes associated with learning the hidden platform location from those induced by general behavioral experience. Comparison of trained and yoked animals identified 186 and 62 differentially palmitoylated proteins after STT and LTT, respectively, whereas yoked animals also exhibited extensive changes relative to naive controls, demonstrating that behavioral experience alone substantially reshapes the hippocampal palmitoylome. Functional enrichment revealed that STT preferentially engaged pathways related to synaptic transmission, cytoskeletal remodeling, GTPase signaling, and cellular metabolism, whereas LTT was associated with protein translation and synaptic organization. Site-specific analysis identified numerous previously unreported palmitoylation sites. Hierarchical analysis further identified diacylglycerol lipase- (DAGLA) as the only protein whose palmitoylation consistently reflected both general Morris water maze experience and learning the hidden platform location across both paradigms. Together, these findings establish S-palmitoylation as a dynamic regulator of experience-dependent hippocampal plasticity.

neuroscience↗

Temporal and protein-specific S-palmitoylation supports synaptic and neural network plasticity

S-palmitoylation, a dynamic post-translational modification, has long been suggested to play a pivotal role in synaptic plasticity, learning, and memory. However, its precise impact on synaptic proteins and function remains unclear. In this study, we show that acute protein depalmitoylation in the hippocampus differentially affects short- and long-term synaptic plasticity, depending on synapse type. Strikingly, depalmitoylation also reprograms neuronal spiking timing following associative network activation. Our research identifies pre- and postsynaptic proteins dynamically regulated by S-palmitoylation during synaptic plasticity and suggests this modification occurs in isolated excitatory synapses. We also demonstrate that S-palmitoylation targets specific proteins within minutes and is not proteome-wide. These findings mark a significant advance in understanding how lipid modifications drive neural adaptability, memory, and learning.

neuroscience↗