Journal: Advanced Science
Article Title: Cell‐Type Specific Circuits in the Mammillary Body for Place and Object Recognition Memory
doi: 10.1002/advs.202409397
Figure Lengend Snippet: Electrophysiological properties of Kcnn4 and Cacna1h in PV and Drd2 neurons. A) A strategy for rAAV2/9‐mediated CRISPR‐Cas9 in vivo gene knockdown. B) Representative images showing the expression of Kcnn4 and Cacna1h sgRNAs in PV (red) and Drd2 (Green) neurons. C) Representative traces and a bar graph showing SAPs in PV neurons with (PV Kcnn4− ) or without (PV Kcnn4+ ) Kcnn4 knockdown, sgRNAs target to zfy2 as the negative control (PV zfy2− ). Data are mean ± SEM ( n = 18 neurons per group, adjusted **** p < 0.0001, one‐way ANOVA followed with Bonferroni's post hoc test). D) Representative traces and a bar graph showing RBs in Drd2 neurons with (Drd2 Cacan1h− ) and without (Drd2 Cacan1h+ ) Cacan1h knockdown, sgRNAs target to zfy2 as the negative control (Drd2 zfy2− ). Data are mean ± SEM ( n = 18 neurons per group, adjusted **** P < 0.0001, one‐way ANOVA followed by Bonferroni's post hoc test). E) Representative traces and bar graphs showing spontaneous miniature EPSCs in PV and Drd2 neurons with (PV Kcnn4− and Drd2 Cacna1h− ) or without (PV Kcnn4+ and Drd2 Cacna1h+ ) Kcnn4 or Cacna1h knockdown. Data are mean ± SEM ( n = 18 neurons per group, t ‐test).
Article Snippet: For recording NMDA receptor‐mediated EPSCs, membrane potentials were hold at +60 mV in the presence of 20 × 10 −6 m bicuculline (BIC, TOCRIS, 0130) and 20 × 10 −6 m CNQX (TOCRIS, 0373).
Techniques: CRISPR, In Vivo, Knockdown, Expressing, Negative Control