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Biomedical subjects

M W Marzke

Publications and source records attributed to M W Marzke.

12 recordsLinked to original sources

Comparative analysis of weight gain, hand/wrist maturation, and dental emergence rates in chimpanzees aged 0-24 months from varying captive environments.

Variability during the first 2 years of growth and development is examined in captive chimpanzees. The mixed longitudinal study of 175 animals compares curves of weight, hand/wrist maturation, and dental emergence for groups within the sample which differ in sex, rearing circumstances (mother-reared versus hand-reared), and colony (Primate Foundation of Arizona, White Sands Research Center, and The University of Texas M.D. Anderson Cancer Center Department of Veterinary Sciences in Bastrop, Texas). Comparison of LOWESS fits of the curves, using a conservative jack-knife approach, reveals trends toward significant differences between colonies for weight (with 4 comparisons reaching significance) and between rearing groups for maturation (1 reaching significance). Results of a full versus reduced model approach show the same trends, for which significance is reached in a higher number of comparisons. The latter approach also indicates possible effects of sex and environmental differences on dental emergence rate. Difficulties with both approaches are discussed. It is concluded that the results are suggestive of significant sex and environmental effects on the variables monitored, justifying further analysis and continuation of the study. The study is significant in 1) providing norms specific to sex and rearing and colony environments with which individual colony animals may be compared in the assessment of their development and in 2) providing a standard, based upon data from a larger and more varied captive chimpanzee population than previously available, with which the dental emergence status and hand/wrist maturation of fossil apes and hominids may be compared.

Aging

Bicompartmentalization of the radiocarpal joint.

Seven wrists are presented with a septum connecting the lunotriquetral interosseous ligament and triangular fibrocartilage, resulting in bicompartmentalization of the radiocarpal joint. In all of the 7 wrists, having no history of trauma, the septums were suspected to be of congenital origin. The histopathology of the septum in 1 cadaver wrist showed a fibrocartilaginous structure. Two types of radiocarpal joint bicompartmentalization were identified by arthrography. Type 1 (2 wrists) had a septum with normal (intact) lunotriquetral interosseous ligament, and type 2 (5 wrists) had a septum with a communicating defect of the lunotriquetral interosseous ligament. The septum is most likely a congenital malformation caused by a disturbance of the vacuolization of the mesenchymal mass between the forearm and carpus.

Adult

Variability at the carpometacarpal and midcarpal joints involving the fourth metacarpal, hamate, and lunate in catarrhini.

Intraspecies variability is investigated in two regions of the wrist, for the purpose of determining whether patterns may be discerned in the variability that may be compared in the functional and phylogenetic analysis of living and fossil catarrhines. In the midcarpal joint region, two lunatohamate configuration patterns are found, and at the fourth carpometacarpal joint four types of configuration are identified. These two sites previously were reported to show almost continuous variability in humans, thus precluding comparison with other species. The different types of configuration in our study are delineated on the basis of their relation to differences in joint function. At the lunatohamate site there is a strong tendency in each species examined for one type to dominate in frequency. At the fourth carpometacarpal joint there is a tendency for one type or for two related types to predominate in each species. The chimpanzee sample exhibits the least variability of all species studied in joint configuration at the two sites. Australopithecus afarensis has a combination of joint types in these regions likely to be found today in only a small percentage of living Hominoidea. We conclude that patterns may be discerned at some joints in what was formerly considered to be a continuum of variation. Since these patterns (joint types) differ in their relative frequencies among living species, the frequency differences may be useful as a guide to the reconstruction of phylogenetic relationships and of potential wrist functions in fossil species.

Animals

Implementation of digital stereo imaging for analysis of metaphyses and joints in skeletal collections.

The surface structure of the growing portion of bones, called the metaphysis, contains clues about the locomotor characteristics of various species. Present methods of capturing this anthropologically interesting surface are time-consuming and subject to human error. The research implements a digital stereo imaging technique for bone metaphyses and joints in skeletal collections. The corresponding points in two images collected from different angles are determined using an area-based correlation matching method. The depths of matched points are computed from the difference in location of the points in the two images. The paper presents a practical implementation of computer vision for anthropology using an 80286-based personal computer, a camera and a video digitiser. The stereo matching algorithm, a practical implementation of classical stereo imaging methods, takes less than 1 min and produces reasonable representations of mammal bones. The accuracy of the depth measurements ranged from 0.7 to 12 per cent for 45-150 cm object-camera distances. False matches occurred in approximately 6 per cent of the total matched points.

Animals

Evolution of the power ("squeeze") grip and its morphological correlates in hominids.

The "squeeze" form of power grip is investigated for the purposes of clarifying the hand posture and activities associated with the grip, assessing the potential in chimpanzees for using the grip, and identifying morphological correlates of an effective power grip that may be recognized in fossil hominid species. Our approaches include: (1) the analysis of the human grip, focusing on both the hand posture involved and hand movements associated with use of the grip in hammering; (2) the analysis of similar chimpanzee grips and associated movements; (3) comparative functional analysis of regions in the hand exploited and stressed by the grip and its associated movements in humans; and (4) a review of the literature on the power grip and its morphological correlates. Results of the study indicate that humans use a squeeze form of power grip effectively to wield cylindrical tools forcefully as extensions of the forearm. Several morphological features occur in high frequency among humans which facilitate the grip and are consistent with the large internal and external forces associated with it in hammering and in other tool-using activities. Chimpanzee hand postures resembling this form of human power grip are not fully comparable and lack some of these morphological correlates that facilitate its use. The hand of Australopithecus afarensis does not appear to have been stressed by use of the grip, but there is some evidence for this type of stress in the metacarpals from Sterkfontein Member 4. Hands from Olduvai and Swartkrans do not provide sufficient evidence for assessment of power grip capabilities.

Adult

Evolutionary development of the human thumb.

The bones and joints of the human thumb are a mosaic of primitive and unique features, reflecting stages in the evolution of the hand from a support element on the ground to a grasping structure in the trees and eventually to an organ dedicated entirely to manipulation. The trapeziometacarpal saddle joint configuration and associated musculature are shared with most nonhuman primate species, whereas the broad distal phalanx with its specialized palmar pad is unique to humans. Most of the distinctive features of the modern human thumb can be explained by the requirements for a firm grip and tolerance of large stresses associated with the use and manufacture of stone tools, which contributed for several million years to the survival of human ancestors after they returned to the ground. Fossil remains indicate that early members of the human family, Hominidae, had short thumbs relative to the length of the fingers, which were not subject to the large stresses associated with modern human manipulative behavior. Later hominids had very flat trapeziometacarpal joints and large distal phalanges, indicating a capacity for opposition of the thumb to all four fingertips and for tolerance of large stresses. Pathologies involving thumb joints contribute to the understanding of the sequence of changes in thumb morphology in the fossil record.

Animals

The use of magnetic resonance imaging for measuring segment inertial properties.

The purpose of the study was to determine whether valid measures of segment inertial properties can be generated from a series of cross-sectional tissue scans using magnetic resonance imaging (MRI). The cross-sectional images for eight baboon cadaver segments (four forearms, two upper arms, and two lower legs) were digitized to yield areas of muscle, bone, and fat tissues. These data, along with tissue density values, were used for calculations of segment volume (V), density (D), mass (M), center of mass location (CM), and moment of inertia (Icm) about a transverse axis through the segment center of mass. Criterion measures of these properties were obtained using standard experimental techniques. Close agreement was found between criterion and MRI values for mean segment CM (44.67 vs. 43.36% from proximal end, respectively) while mean segment D was the same (1.124 g.cm-3) for both methods. MRI procedures tended to overestimate segment V(595.3 vs. 633.4 cm3), M(720.0 vs. 769.9 g), and Icm (3.208 vs. 3.332 x 10(-3) kg.m2). It was concluded that MRI represents a promising technique for generating valid measures of segment inertial characteristics as well as other anatomical features.

Animals

Gluteus maximus muscle function and the origin of hominid bipedality.

Bipedality not only frees the hands for tool use but also enhances tool use by allowing use of the trunk for leverage in applying force and thus imparting greater final velocity to tools. Since the weight and acceleration of the trunk and forelimbs on the hindlimbs must be counteracted by muscles such as m. gluteus maximus that control pelvic and trunk movements, it is suggested that the large size of the cranial portion of the human gluteus maximus muscle and its unique attachment to the dorsal ilium (which is apparent in the Makapan australopithecine ilium) may have contributed to the effectiveness with which trunk movement was exploited in early hominid foraging activities. To test this hypothesis, the cranial portions of both right and left muscles were investigated in six human subjects with electromyography during throwing, clubbing, digging, and lifting. The muscles were found to be significantly recruited when the trunk is used in throwing and clubbing, initiating rotation of the pelvis and braking it as trunk rotation ceases and the forelimb accelerates. They stabilize the pelvis during digging and exhibit marked and prolonged activity when the trunk is maintained in partial flexion during lifting of heavy objects.

Adult

The third metacarpal styloid process in humans: origin and functions.

The development, mechanics, and pathology of the third carpometacarpal joint have been investigated in order to explain the unique presence in humans of a styloid process on the third metacarpal. Structure and functions of the joint are compared in a large series of Old World anthropoid hand skeletons, cadavers, and X-rays, and shown to differ in the three groups. Developmental anomalies reveal the source of the human styloid in a group of cells which fuse with the capitate in other Old World Anthropoidea. The absence of the process in Australopithecus afarensis and its presence in Neandertals suggest that an explanation for the evolution of the process may be sought in stresses on the hand in stone tool-use. Film analysis of stone tool-use shows that hammering and digging with hand-held stones direct forces on the palmar aspect of the metacarpal head. From a biomechanical analysis of these forces it may be seen that the styloid process prevents subluxation of the base. The effectiveness of the process in this function is reflected by the rarity of injury and arthritis in the region. Individuals lacking the process tend to undergo degeneration of bone at the joint. Since repetitive impulsive forces on joints are known to cause osteoarthritis, it is suggested that there may be a link between the increasing reliance of early hominids on manipulative behavior that stressed this region of the hand and the evolution of a structural pattern that protects the joint from these stresses.

Animals

Evidence of hypertrophic pulmonary osteoarthropathy in a chimpanzee, Pan troglodytes.

Dissection of a chimpanzee has revealed the association of an intrathoracic disease (probably coccidioidomycosis) with periosteal lesions that are restricted almost entirely to the appendicular skeleton and are distributed with bilateral symmetry. These pathological conditions are compatible with a diagnosis of hypertrophic pulmonary osteoarthropathy.

Animals