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Genetic manipulation of the embryonic mouse brain is a preferred approach to learn about developmental regulation. The generation of mutant mouse lines however is slow and expensive. One powerful method to introduce specific genetic changes in developing neurons of the mammalian brain is in utero electroporation. Essentially, the technique consists of transfecting DNA into the embryonic brain neuroepithelium by means of electric pulses, then allowing the embryo to survive for a certain period of time, collect the brain and examine them for possible novel, informative phenotypes. In this way, the experimenter can test hypotheses almost immediately without the long waiting periods necessary for the production of mouse mutants.
Transfection of DNA into developing embryos started with in ovo electroporation on chick embryos1. The essential proof-of-concept for the mouse was performed in culture2. This was soon followed by the first descriptions of the technique on the mouse in utero3,4.
The main problem is to transfect the brain of embryos developing in utero without killing them or the mother. Learning to perform the necessary surgery (laparotomy, injection, electroporation) requires a long training period. Once the surgery has been mastered to the point where the embryo survival ratio is acceptable, the next key question is: which brain structures are accessible? Not surprisingly, the first published papers showing results obtained with in utero electroporation focused on cortical development5-9. This is still true for most of the publications using this technique, since the region of the developing mouse brain most accessible to surgical procedures is the cortex (Figure 1). The procedure for in utero electroporation into the cortex has been described in print10 and in video11-14. A modification of the technique can be used to target a ventral part of the telencephalon, the basal ganglia15.
Beyond the telencephalon, the diencephalon (classically divided into thalamus and hypothalamus) is a region of the forebrain more difficult to reach. A small number of papers reports targeting of its dorsal and most accessible part, the thalamus16-19.
The hypothalamus is the most ventral part of the forebrain, therefore the one localized most deeply from the dorsal surface (cortex) (Figure 1). This region remains a difficult challenge for researchers committed to genetically manipulate the mouse brain in utero. To our knowledge, only very few articles report on results of in utero transfection into the mouse hypothalamus 20,21. However, the functional importance of the hypothalamus cannot be overstated, since it regulates behaviors like eating and drinking, mating, breeding and parenting22. Moreover, alterations in hypothalamic development contribute to originate later in life conditions like obesity, hypertension, diabetes and precocious puberty23. Being able to alter genetically the hypothalamus during development would provide a very powerful tool to understand it.
The basic surgical protocol for the laparotomy of pregnant mice that we use here is similar to that used in other protocols11,13,14,24. We will describe them here briefly for completeness. Key to our procedure, on the other hand, are the type of anesthesia, the place of injection, the type of electrodes and the insertion and position of the positive electrode with respect to the embryo's head. We prefer to induce and maintain anesthesia through gas inhalation over simple intraperitoneal anesthesia, since the former allows for the somewhat longer periods of narcosis required for a difficult surgery. Isoflurane inhalation results in faster recovery from anesthesia, since usually the mother demonstrates normal behavior already minutes after the surgery. The easiest point of injection of the DNA solution with the glass micropipette is the lateral ventricle, which however is completely unsuitable for hypothalamus electroporation. Injection directly in the third ventricle is indeed crucial to target deep diencephalic structures. It is possible to transfect the hypothalamus from E12.0 or E12.5 with standard, off-the-shelf electrodes. We have found some of the electrodes manufactured by Nepa Gene (Chiba, Japan) particularly suited to this purpose.
With our procedure we obtain transfection of the entire hypothalamic neuroepithelium or partial, regional transfection depending on electrode orientation. Here we demonstrate the technique by transfecting the mammillary body, arguably the deepest and most recessed of all hypothalamic nuclei. Additionally, we show detailed histological analysis of the transfected cells down to the cellular level of resolution.
A comparison of in utero electroporation with other approaches to transfecting the mouse developing brain in utero can be found in the Discussion section.