Department of Biomedical Engineering, Johns Hopkins University, Baltimore, MD 21205, United States.
Department of Biology, University of Maryland, College Park, MD 20742, United States.
Cereb Cortex. 2023 Jul 5;33(14):9038-9053. doi: 10.1093/cercor/bhad180.
Sensory perturbation in one modality results in the adaptive reorganization of neural pathways within the spared modalities, a phenomenon known as "crossmodal plasticity," which has been examined during or after the classic "critical period." Because peripheral perturbations can alter the auditory cortex (ACX) activity and functional connectivity of the ACX subplate neurons (SPNs) even before the critical period, called the precritical period, we investigated if retinal deprivation at birth crossmodally alters the ACX activity and SPN circuits during the precritical period. We deprived newborn mice of visual inputs after birth by performing bilateral enucleation. We performed in vivo widefield imaging in the ACX of awake pups during the first two postnatal weeks to investigate cortical activity. We found that enucleation alters spontaneous and sound-evoked activities in the ACX in an age-dependent manner. Next, we performed whole-cell patch clamp recording combined with laser scanning photostimulation in ACX slices to investigate circuit changes in SPNs. We found that enucleation alters the intracortical inhibitory circuits impinging on SPNs, shifting the excitation-inhibition balance toward excitation and this shift persists after ear opening. Together, our results indicate that crossmodal functional changes exist in the developing sensory cortices at early ages before the onset of the classic critical period.
一种感觉模态的感觉干扰会导致未受损模态的神经通路的适应性重组,这种现象被称为“跨模态可塑性”,它已经在经典的“关键期”期间或之后进行了研究。因为即使在关键期之前的所谓“预关键期”,外周干扰也可以改变听觉皮层(ACX)的活动和 ACX 基板神经元(SPN)的功能连接,所以我们研究了出生时的视网膜剥夺是否会在预关键期期间交叉模态地改变 ACX 的活动和 SPN 回路。我们通过双侧眼球切除术在出生后剥夺新生小鼠的视觉输入。我们在出生后两周内对清醒幼鼠的 ACX 进行了体内宽场成像,以研究皮层活动。我们发现,眼球切除术以年龄依赖的方式改变了 ACX 中的自发性和声音诱发活动。接下来,我们在 ACX 切片上进行全细胞膜片钳记录和激光扫描光刺激,以研究 SPN 中的回路变化。我们发现,眼球切除术改变了作用于 SPN 的皮质内抑制回路,将兴奋-抑制平衡向兴奋转移,这种转移在耳孔开放后仍然存在。总之,我们的结果表明,在经典关键期开始之前的早期,发育中的感觉皮层中存在跨模态的功能变化。