Fast neural encoding of sound is essential for normal auditory functions. These include sound localization abilities1, speech in noise discrimination2, and the comprehension of other behaviorally relevant communication signals3. Analogous neurons located in the auditory brainstem of both avians and mammals are highly specialized for fast neural encoding4. These include the chicken nucleus magnocellularis (NM), the nucleus laminaris (NL) and their mammalian analogs, the anteroventral cochlear nucleus (AVCN) and the medial superior olive (MSO), respectively5. However, developmental mechanisms regulating fast neural encoding are poorly understood in the auditory brainstem. Therefore, it is advantageous to study specific genes that are responsible for fast neural encoding in order to better understand their expression, regulation and function in auditory development.
The developing chicken embryo is an effective and well-established research tool to study basic biological questions of auditory system development6,7. Recent molecular advances have addressed these biological questions in the developing chicken embryo by expressing or knocking down genes of interest in order to analyze in vivo gene function8,9. Investigating the regulatory role of specific genes is a significant advancement in understanding pathologies associated with auditory deficits. Here, we present in ovo electroporation of plasmid-encoded genes into the chicken auditory brainstem where fast neural encoding of sound occurs10. By targeting auditory neural progenitor regions associated with rhombomeres 5 and 611,12 (R5/R6), we show spatial control of plasmid transfection in NM and NL. In addition, we show temporal regulation of expression by adopting a tet-on vector system. This is a drug inducible procedure that expresses the genes of interest in the presence of doxycycline (Dox)8.