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Petrovic, Z.

Publications and source records attributed to Petrovic, Z..

3 recordsLinked to original sources

Hippocampal CA2 modulates trace fear conditioning through circuit-specific control of CA1

Forming associations between temporally separated events depends on pathways linking the CA1, the subiculum (SUB), and the entorhinal cortex. The degree to which this process requires the CA2, which shares extensive connectivity with these regions, remains unknown. Using trace fear conditioning (TFC), where mice learn to associate a tone and shock separated by a temporal gap, we showed that the dCA2 contributes to TFC. Interestingly, whereas chronic dCA2 inhibition decreased cue-associated freezing, acute dCA2[->]dCA1 projection inhibition increased freezing. Combined with differential effects on cFos expression, this suggests that global and projection-specific perturbations of the dCA2 have distinct effects on TFC and hippocampal activity states. Fiber photometry revealed that dCA2[->]dCA1 activity shifted from tone responsiveness during conditioning to expected shock activation during recall, consistent with learning-associated activity remodeling. Together, these findings identify the dCA2 as a contributor to TFC and implicate dCA2[->]dCA1 signaling in shaping fear expression across learning and recall.

neuroscience↗

Response dynamics of discrete subiculum->retrosplenial cortex projections underlying trace fear conditioning

Associating events separated in time depends on the CA1, subiculum (SUB), and retrosplenial cortex (RSP). The degree to which their connectivity and underlying circuit mechanisms contribute to the association of such temporally discontiguous events is not known. Here we showed, using trace fear conditioning (TFC), wherein mice learn to associate tone and shock separated by a temporal trace, that molecularly distinct excitatory VGluT1+ and VGluT2+ SUB[->]RSP projections subserve the associative and temporal components of TFC. During trace memory formation, VGluT2+ SUB[->]RSP projections showed increased and decreased bulk calcium activity at tone and trace onset, respectively, an activity pattern that was reestablished during memory recall. Such pattern was not observed in CA subfields, suggesting that associative and temporal components of TFC are integrated at the SUB or SUB[->]RSP synapses before being presented to the RSP. Our findings establish a circuit mechanism for representing complex temporal information in episodic memory.

neuroscience↗

NeuID, a novel neuron-specific lncRNA, resolved a key epigenetic mechanisms linking gene silencing to Alzheimer's disease

The increasing evidence that non-coding RNAs can become deregulated during pathogenesis is dramatically expanding the space for drug discovery beyond the protein-coding genome. Long noncoding RNAs (lncRNAs) are emerging as key regulators of cellular function, yet most remain uncharacterized. Here, we identify a previously unstudied lncRNA, which we named Neuronal Identity (NeuID)--a conserved, brain-enriched transcript expressed exclusively in neurons. NeuID is downregulated in the brains of Alzheimers disease (AD) patients. Mechanistically, NeuID maintains neuronal identity by repressing developmental and glial genes via interaction with the PRC2 subunit EZH2 and regulation of H3K27me3. Knockdown of NeuID disrupts this repression, leading to impaired neuronal activity and memory formation. Importantly, CRISPRa-mediated NeuID overexpression restores neuronal function in A{beta}42-treated neurons. These findings identify NeuID as a critical regulator of neuronal plasticity and position it as a promising therapeutic target for AD. One sentence summaryWe identify NeuID, a novel brain and neuron-specific long non-coding RNA downregulated in Alzheimers disease, as a key regulator of neuronal identity and a promising therapeutic target to restore neuronal function.

neuroscience↗