Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

The Homalopterid Skull

View through CrossRef
Summary. The skull of the homalopterid fishes is generally flattened and is compactly built. The upper lip is supported by a set of two pairs of bones in Bhavania and Balitora (laerimojugal and rostral) and a single large one in Gastromyzon (lacrimojugal‐rostral). The median limb of the premaxilla in Bhavania and Balitora sits on the median rostral, which is an ossification in the fused anterior upper labials; in Gastromyzon the median limbs are anterior to the cruciform median rostral. From the ethmoid, with which probably the supraethmoid is also fused, processes are given off anterolaterally for articulation with the preethmoid bones, long and cylindrical in Bhavania and Balitora. Sitting upon these pre‐ethmoids, is the lateral rostral in Bhavania and Balitora; in Gastromyzon the lateral rostral articulates anteriorly to the pre‐ethmoid. The lateral ethmoids are large bones supporting lacrimojugals or lacrimojugal‐rostrals. There is a supraorbital sensory canal passing in the frontal and nasal; only in Gastromyzon is there an independent supraorbital sensory canal bone near the sphenotic. The suborbital sensory canal passing through a series of tubular sensory bones ends in the rostral (Bhavania and Balitora) or beside the lacrimojugal‐rostral as in Gastromyzon. In the latter genus there is also a set of four mandibular canal bones starting from the postorbital. In Bhavania and Balitora the sensory canal runs partly in the pterotic bone; by the side of the sphenotic there are two sensory canal ossicles in Bhavania and one in Balitora, while in Gastromyzon there are four ossicles by the side of the sphenotic and pterotic, and no part of the sensory canal passes through the latter bone. Behind the pterotic, both in Bhavania and Balitora, there are three extra‐scapulars, two of which are canaliculated; in Gastromyzon there is only one extrascapular corresponding to the lateral extrascapular of the other forms leading the lateral line sensory canal. Of the otic bones, the prootic, pterotic, sphenotic, and epiotic are separate ossifications; the opisthotic seems to have merged with the exoccipital. It is not known if the pterotic represents a compound bone with the sensory canal bone merged with it in Bhavania and Balitora. The broad post‐temporal comes in contact with the posterior face of the pterotic and with the upper surface of the cleithrum. The cleithrum comes in intimate contact with the enlarged first vertebra and the latter is also firmly articulated with the occipital condyles. A preopercular is absent in Bhavania and Gastromyzon; in Balitoraa preopercular and a tubular sensory canal bone in front of it are present, but a symplectic is absent. A hitherto unnoticed bone in contact with the posterior limb of the quadrate in the upper jaw of modern fishes, and called by me the “posterior ectopterygoid” and generally articulating with the metaptery‐goid is recorded in all the three genera of Homalopteridae studied. While a subtemporal fossa is prominently noticed in Bhavania and Balitora, it is absent in Gastromyzon. A retroarticular is prominently noticed in the lower jaw of Bhavania and Balitora; in Gastromyzon a retroarticular is absent and a sesamoid angular (sesamoid articular) is well developed. In front of the sesamoid angular in Gastromyzon there is a small scale‐like sesamoid bone, which is, however, absent in Bhavania and Balitora.
Title: The Homalopterid Skull
Description:
Summary.
The skull of the homalopterid fishes is generally flattened and is compactly built.
The upper lip is supported by a set of two pairs of bones in Bhavania and Balitora (laerimojugal and rostral) and a single large one in Gastromyzon (lacrimojugal‐rostral).
The median limb of the premaxilla in Bhavania and Balitora sits on the median rostral, which is an ossification in the fused anterior upper labials; in Gastromyzon the median limbs are anterior to the cruciform median rostral.
From the ethmoid, with which probably the supraethmoid is also fused, processes are given off anterolaterally for articulation with the preethmoid bones, long and cylindrical in Bhavania and Balitora.
Sitting upon these pre‐ethmoids, is the lateral rostral in Bhavania and Balitora; in Gastromyzon the lateral rostral articulates anteriorly to the pre‐ethmoid.
The lateral ethmoids are large bones supporting lacrimojugals or lacrimojugal‐rostrals.
There is a supraorbital sensory canal passing in the frontal and nasal; only in Gastromyzon is there an independent supraorbital sensory canal bone near the sphenotic.
The suborbital sensory canal passing through a series of tubular sensory bones ends in the rostral (Bhavania and Balitora) or beside the lacrimojugal‐rostral as in Gastromyzon.
In the latter genus there is also a set of four mandibular canal bones starting from the postorbital.
In Bhavania and Balitora the sensory canal runs partly in the pterotic bone; by the side of the sphenotic there are two sensory canal ossicles in Bhavania and one in Balitora, while in Gastromyzon there are four ossicles by the side of the sphenotic and pterotic, and no part of the sensory canal passes through the latter bone.
Behind the pterotic, both in Bhavania and Balitora, there are three extra‐scapulars, two of which are canaliculated; in Gastromyzon there is only one extrascapular corresponding to the lateral extrascapular of the other forms leading the lateral line sensory canal.
Of the otic bones, the prootic, pterotic, sphenotic, and epiotic are separate ossifications; the opisthotic seems to have merged with the exoccipital.
It is not known if the pterotic represents a compound bone with the sensory canal bone merged with it in Bhavania and Balitora.
The broad post‐temporal comes in contact with the posterior face of the pterotic and with the upper surface of the cleithrum.
The cleithrum comes in intimate contact with the enlarged first vertebra and the latter is also firmly articulated with the occipital condyles.
A preopercular is absent in Bhavania and Gastromyzon; in Balitoraa preopercular and a tubular sensory canal bone in front of it are present, but a symplectic is absent.
A hitherto unnoticed bone in contact with the posterior limb of the quadrate in the upper jaw of modern fishes, and called by me the “posterior ectopterygoid” and generally articulating with the metaptery‐goid is recorded in all the three genera of Homalopteridae studied.
While a subtemporal fossa is prominently noticed in Bhavania and Balitora, it is absent in Gastromyzon.
A retroarticular is prominently noticed in the lower jaw of Bhavania and Balitora; in Gastromyzon a retroarticular is absent and a sesamoid angular (sesamoid articular) is well developed.
In front of the sesamoid angular in Gastromyzon there is a small scale‐like sesamoid bone, which is, however, absent in Bhavania and Balitora.

Related Results

Effect of skull porosity on ultrasound transmission and wave mode conversion at large incidence angles
Effect of skull porosity on ultrasound transmission and wave mode conversion at large incidence angles
AbstractBackgroundTranscranial ultrasound imaging and therapy depend on the efficient transmission of acoustic energy through the skull. Multiple previous studies have concluded th...
Morphometry of the cranial cavity of dogs of mesocephalic breeds
Morphometry of the cranial cavity of dogs of mesocephalic breeds
The bones of the cerebral part of the skull form the cranial cavity, which is a container for the brain, its membranes, vessels and venous sinuses. Most morphometric studies of the...
10222- STMO-16 THE FENCE-POST METHOD WITH BONY SURFACE MATCHING REGISTRATION.
10222- STMO-16 THE FENCE-POST METHOD WITH BONY SURFACE MATCHING REGISTRATION.
Abstract Neuronavigation has become an indispensable system for brain tumor surgery, and the fence-post method is useful for removal of intramedullary tumors. Howeve...
Craniofacial Reconstruction Method Based on Region Fusion Strategy
Craniofacial Reconstruction Method Based on Region Fusion Strategy
Craniofacial reconstruction is to estimate a person’s face model from the skull. It can be applied in many fields such as forensic medicine, archaeology, and face animation. Cranio...
ANINet: a deep neural network for skull ancestry estimation
ANINet: a deep neural network for skull ancestry estimation
Abstract Background Ancestry estimation of skulls is under a wide range of applications in forensic science, anthropology, and facial reconstruction...
Abnormalities Detection in Apert Syndrome using Hierarchical Clustering Algorithms
Abnormalities Detection in Apert Syndrome using Hierarchical Clustering Algorithms
Craniosynostosis syndrome is a congenital condition occurring due to the abnormal development of the skull, leading to abnormalities in skull morphology. Apert syndrome is one of c...
The Link Between Skull Fracture and Extradural Hematoma in Head Injury Patients who came to a Tertiary Care Hospital in Pakistan
The Link Between Skull Fracture and Extradural Hematoma in Head Injury Patients who came to a Tertiary Care Hospital in Pakistan
Aim: The purpose of our current study is to see if there is any connection between skull fracture and extradural hematoma in head injury patients who came to the tertiary care hosp...
Traumatic brain injury of childhood
Traumatic brain injury of childhood
It is a common observation, and very unfortunate one, that only the driver wears or “bears” helmets on motorbikes. None of the other passengers, especially children, are supposed t...

Back to Top