Four methods used for the neurohistochemical demonstration of horseradish peroxidase (HRP) were quantitatively compared by counting retrogradely labeled neurons found after each method was used. HRP used as a retrograde marker is an important neuroanatomical tracing method, and maximum sensitivity in its demonstration of retrogradely labeled neurons is important if these neuroanatomical studies are to completely demonstrate afferent neurons. The four methods compared were a diaminobenzidine (DAB) procedure, a Hanker-Yates procedure using P-phenylenediamine and pyrocatechol, an o-dianisidine procedure, and a tetramethyl benzidine (TMB) procedure. The TMB procedure resulted in a more complete topography of neurons afferent to the HRP application site, and demonstrated many more neurons in all afferent cell groups than either of the three other procedures. Use of the TMB method was especially critical in the cases of small HRP applications, a size useful for neuroanatomical
Four methods used for the neurohistochemical demonstration of horseradish peroxidase (HRP) were quantitatively compared by counting retrogradely labeled neurons found after each method was used. HRP used as a retrograde marker is an important neuroanatomical tracing method, and maximum sensitivity in its demonstration of retrogradely, labeled neurons is important if these neuroanatomical studies are to completely demonstrate afferent neurons. The four methods compared were a diaminobenzidine (DAB) procedure, a Hanker-Yates procedure using P-phenylenediamine and pyrocatechol, an o-dianisidine procedure, and a tetramethyl benzidine (TMB) procedure. The TMB procedure resulted in a more complete topography of neurons afferent to the HRP application site, and demonstrated many more neurons in all afferent cell groups that either of the three other procedures. Use of the TMB method was especially critical in the cases of small HRP applications, a size useful for neuroanatomical studies, where the other methods demonstrated very few or no retrogradely labeled neurons. Neurons were judged to be retrogradely HRP labeled if they had small granules of the reaction product (the color varying with the chromogen) describing the somal shape, usually extending into the processes, and a clear nucleus. In addition, after the o-dianisidine or the TMB reaction a small number of retrogradely labeled neurons had soma and processes especially well filled with reaction product, giving the appearance of neurons from Golgi preparations. For a sensitive TMB reaction giving good results, exact H2O2 concentration, freshly prepared solutions, minimal postreaction exposure to alcohol, counterstaining, and clean glassware were each found to be important.
Neurons in the hypothalamus, other diencephalic regions, and the telencephalon which project to the mesencephalic central gray (CG) and the region lateral to it were demonstrated, in the rat, by the horseradish peroxidase retrograde neuroanatomical tracing method with diaminobenzidine and tetramethyl benzidine visualization reactions. The greatest concentrations of neurons that project to the dorsal mesencephalon were found in the ventromedial nucleus, particularly the anterior and ventrolateral subdivisions, in the dorsal premammillary nucleus, and in the zona incerta. Neurons that project to or lateral to the CG were also found in the laterocaudal hypothalamus, the dorsomedial hypothalamus, regions of the anterior hypothalamic area, specific areas of the cerebral cortex (32, 29, 8, 8A, 13, 14), and the central nucleus of the amygdala. Some neurons that project were also found in the preoptic area, septum, bed nucleus of the stria terminals, and the habenula. More neurons in the mediocaudal quadrant of the hypothalamus project to the mesencephalon than do those in laterocaudal, mediorostral, or laterorostral quadrants. More neurons in the medial than the lateral half, and more in the caudal than the rostral half of the hypothalamus project to the mesencephalon. More neurons project to the central gray, or the region lateral to it, at the levels of the superior colliculus, or intercollicular region, than at the level of the inferior colliculus. These descending connections to the midbrain, particularly from the hypothalamus and zona incerta, are probably components of neural networks that regulate nociception, certain neuroendocrine functions, sexual and other behaviors, and certain autonomic functions.