Structure
The human epididymis is situated posterior and somewhat lateral to the testis. The epididymis is invested completely by the tunica vaginalis (which is continuous with the tunica vaginalis covering the testis). The epididymis can be divided into three main regions: * The head (). The head of the epididymis receives spermatozoa via the efferent ducts of the mediastinium of the testis at the superior pole of the testis. The head is characterized histologically by a thick epithelium with long stereocilia (described below) and a little smooth muscle. It is involved in absorbing fluid to make the sperm more concentrated. The concentration of the sperm here is dilute. * The body (). This has an intermediate epithelium and smooth muscle thickness. * The tail (). This has the thinnest epithelium of the three regions and the greatest quantity of smooth muscle. The tail is distally continuous with (the convoluted portion of) the ductus deferens (s. vas deferens).Histology
The epididymis is covered by a two layered pseudostratified epithelium. The epithelium is separated by a basement membrane from the connective tissue wall which has smooth muscle cells. The major cell types in the epithelium are: * Principal cells: columnar cells that, with the basal cells, form the majority of the epithelium. In the caput (head) region these cells have long stereocilia that are tuft-like extensions that project into the lumen. The stereocilia are much shorter in the cauda (tail) segment. They also secrete carnitine, sialic acid, glycoproteins, and glycerylphosphorylcholine into the lumen. * Basal cells: shorter, pyramid-shaped cells, which contact the basal lamina but taper off before their apical surfaces reach the lumen. These are thought to be undifferentiated precursors of principal cells. * Apical cells: predominantly found in the head region * Clear cells: predominant in the tail region * Intraepithelial lymphocytes: distributed throughout the tissue. * Intraepithelial macrophagesStereocilia
The stereocilia of the epididymis are long cytoplasmic projections that have an actin filament backbone. These filaments have been visualized at high resolution using fluorescent phalloidin that binds to actin filaments. The stereocilia in the epididymis are non-motile. These membrane extensions increase the surface area of the cell, allowing for greater absorption and secretion. It has been shown that epithelial sodium channel ENaC that allows the flow of Na+ ions into the cell is localized on stereocilia. Because sperm are initially non-motile as they leave the seminiferous tubules, large volumes of fluid are secreted to propel them to the epididymis. The core function of the stereocilia is to resorb 90% of this fluid as the spermatozoa start to become motile. This absorption creates a fluid current that moves the immobile sperm from the seminiferous tubules to the epididymis. Spermatozoa only reach full motility when inside aDevelopment
In the embryo, the epididymis develops from tissue that once formed the mesonephros, a primitive kidney found in many aquatic vertebrates. Persistence of the cranial end of the mesonephric duct will leave behind a remnant called the '' appendix of the epididymis''. In addition, some mesonephric tubules can persist as the '' paradidymis'', a small body caudal to the efferent ductules. The epoophoron is a homologous remnant in the female.Function
Role in storage of sperm and ejaculant
Spermatozoa formed in the testis enter the caput epididymidis, progress to the corpus, and finally reach the cauda region, where they are stored. Sperm entering the caput epididymidis are incomplete—they lack the ability to swim forward (motility) and to fertilize an egg. Epididymal transit takes 2 to 6 days in humans and 10–13 in rodents. During their transit in the epididymis, sperm undergo maturation processes necessary for them to acquire motility and fertility. Final maturation ('' capacitation'') is completed in the female reproductive tract. The epididymis secretes immobilin, a large glycoprotein that is responsible for the creating of the viscoelastic luminal environment that serves to mechanically immobilize spermatozoa untilAntioxidant defenses
During their transit through the epididymis, the spermatozoa undergo a series of transformations in preparation for their ultimate task of fertilizing the oocyte. In order to protect the spermatozoa during their transit through the epididymis, the epididymal epithelium produces a variety of antioxidant proteins that help protect the spermatozoa from oxidative damage. The antioxidant proteins produced include catalase, glutathione peroxidases, glutathione-S-transferases, peroxiredoxins, superoxide dismutases, thioredoxin reductase and thioredoxins. Deficiencies in the availability of these antioxidant proteins reduces sperm quality by affecting a variety of the proteins necessary for the motility needed to fertilize oocytes. Reduced antioxidant activity also causes increased oxidative damage to the sperm DNA.Clinical significance
Inflammation
An inflammation of the epididymis is called epididymitis. It is much more common than testicular inflammation, termed orchitis.Surgical removal
Epididymotomy is the placing of an incision into the epididymis and is sometimes considered as a treatment option for acute suppurating epididymitis. Epididymectomy is the surgical removal of the epididymis sometimes performed for post-vasectomy pain syndrome and for refractory cases of epididymitis. Epididymectomy is also performed for sterilization on someOther animals
The epididymis is present in male reptiles, birds, mammals, and cartilaginous fish. The caput epididymidis is fused to the testis in eutherian mammals, but not in marsupials. In reptiles, there is an additional canal between the testis and the head of the epididymis and which receives the various efferent ducts. This is, however, absent in all birds and mammals.Gallery
See also
* Epididymis evolution from reptiles to mammals * * List of distinct cell types in the adult human bodyNotes
External links
* {{Authority control Human male reproductive system Mammal male reproductive system Sex organs Scrotum