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Handedness and sexual orientation.

Surveys of handedness distribution (i.e., the distribution across handedness categories in large samples, typically based upon self-reported right-, mixed- and left-handed classification) indicate approximately 90% of the population is right-handed (Springer & Deutsch, 1989). This distribution toward right-handedness has been called right shift based on a genetic model (Annett, 1985). The present study examined possible handedness distribution differences between 141 gay, lesbian, and bisexuals and 260 heterosexuals who have a homosexual/bisexual first-degree (biological) relative. Based on a five-category self-assessment handedness questionnaire that was validated using Briggs and Nebes' (1975) reformulation of Annett's inventory (1970), non-heterosexuals showed a reduction of right shift compared to heterosexuals (i.e., a population shift toward mixed- and left-handedness), confirming the results of Lindesay (1987) and Becker et al., (1989). Sexual orientation also weakly predicted handedness. The findings indirectly support the hypothesis of Geschwind and Galaburda (1985a, 1985b) that sexual orientation and handedness may be linked, both possibly influenced prenatally by testosterone. The discussion emphasizes (a) the meaninglessness in distinguishing genetic from hormonal influences and (b) non-heterosexually biased assumptions about human sexuality.

Adult↗

Is there geographical variation in human handedness?

Right- and left-handed individuals are present in all cultures. However, while it is known that handedness is a heritable trait, little is known about how handedness varies between populations-and without this knowledge, the significance of the left/right polymorphism is hard to interpret. We reviewed the literature to assess the extent of geographical variation of throwing or hammering handedness. These two tasks were chosen because they are present in all known cultures (unlike, for example, writing), and make sense within the context of several adaptive theories on the origin of laterality, or maintenance of handedness polymorphism, which state that tool or weapon manipulation are pivotal. A total of 81 samples were found with primary data on throwing or hammering handedness, spanning 14 countries and concerning more than 1,214,000 individuals studied between 1922 and 1998. A global logistic regression was performed to assess the significance of the country of the study, controlling for several potentially confounding variables (date of the study, sex and age of individuals). Country always had a significant effect, consistent with substantial geographical variation of throwing and hammering handedness. Curiously, left-handedness frequency estimates for a given country were not always consistent across datasets, perhaps due to missing variables, such as educational level or socio-economic status. Results are discussed in the context of the evolution of handedness and the significance of the current polymorphism.

Biological Evolution↗

Using hand performance measures to predict handedness.

Handedness is defined by the individual's preference to use one hand predominately for unimanual tasks and the ability to perform these tasks more efficiently with one hand (Corey, Hurley, & Foundas, 2001). It is important to use performance variables to measure handedness because they are more objective than traditional hand preference questionnaires (Bryden, Pryde, & Roy, 2000a). The current study develops a predictive model of handedness as measured by the Waterloo Handedness Questionnaire (WHQ) using several performance indicators of handedness. A total of 120 individuals (60 right-handers and 60 left-handers) were asked to complete four performance-based tasks: the Grooved Pegboard (GP), the Annett pegboard (AP), finger tapping (FT), and grip strength (GS) as well as an observational measure of preference, the Wathand Box Test (WBT). Backward linear regression analysis showed that the Wathand Box measure and the laterality quotients for several performance measures (GP place, AP, and FT) combined to act as the most accurate predictors of hand preference. The predictive model of handedness developed is as follows: WHQ = -2.760- - 0.667(GP place) + 0.809(FT) + 0.234(WBT) - 0.748(AP) with an explained variance of 0.836. These results illustrate, as Corey et al. (2001) suggested, that the best predictive model of handedness combines preference measures and several performance measures that tap into different elements of motor performance. By developing this model, it is possible to get an accurate measure of handedness using objective measures.

Adolescent↗

Handedness in Swedish 10-year-olds. Some background and associated factors.

Forty-five left-handed and 46 right-handed 10-year-old children were subjected to a limited set of neurological tests and a square tracing task. 'Pathological' handedness was diagnosed in cases showing poor performance with the non-preferred hand on the squares task. The frequency of left-handedness in the population was estimated at 9.2%. The boy : girl ratio was 1.6:1. 'Pathological' handedness was twice as common among left-handers as among right-handers. Neurological dysfunction was more common in 'pathological' handers, especially left-handers. Reduced pre-. peri- and neonatal optimality was seen in boys with 'pathological handedness'. School achievement problems and behaviour problems were much more common in left-handed boys than in other study groups. The results lend partial support for the extended pathological left-handedness model recently hypothesized by Bishop, but it is suggested that left-handedness in boys is more often a symptom of pathological shift of handedness than is left-handedness in girls.

Achievement↗

A literature review of the effect of handedness on isometric grip strength differences of the left and right hands.

When estimating preinjury grip strengthfor compensation and rehabilitation purposes, two methods have been identified in the literature: (a) comparison with the unaffected hand and (b) reference to grip strength normative data. The literature is divided about whether a significant difference exists between the grip strengths of a person's two healthy hands. Some researchers argue that handedness affects the grip strength ratio. According to these authors, there is considerable variation in the definition of handedness, its effect on grip strength ratios, and the methods of assessing handedness as it relates to grip strength. The complexity of defining and accurately evaluating handedness is discussed in this literature review. Inappropriateness of the current use of self-report questionnaires for determining handedness for grip strength purposes is highlighted. The impact of the effect of handedness on grip strength ratios cannot be clarified until a consistent definition and evaluation method for assessing handedness is developed. This handedness definition then needs to be applied to appropriately designed hand grip strength studies.

Female↗

Right and left handedness defined: a multivariate approach using hand preference and hand performance measures.

OBJECTIVE: The major aim of this study was to determine whether a combination of hand preference inventories and hand performance measures identifies distinct handedness groups. If distinct groups are identified, then these subgroupings can be used in future studies to learn more about the neurobiology of these distinct handedness groups. BACKGROUND: Although most individuals classify themselves as right- or left-handed, it is not entirely clear whether handedness should be determined based on preference inventories, hand performance tasks, or a combination of these measures. Given that hand preference is linked in part to hemispheric specialization of language, it is important to clearly define hand preference groups if lateralized differences between right- and left-handers are to be explored. Healthy adult right- and left-handers were examined from a multivariate perspective in an attempt to determine whether handedness subgroups exist within performance data. METHOD: Hand preference of 62 right- and left-handed male and female adults was assessed using items from Briggs and Nebes' and Oldfield's handedness inventories. Individuals were assigned to right- and left-hand preference groups, both by visually inspecting the distribution of preference scores and via cluster analysis. Asymmetries in performance of unimanual motor tasks (grooved pegboard, finger-tapping, and grip strength) were then examined using a multivariate approach. RESULTS: Sixteen items from the two-handedness inventories were used to determine preference-based handedness groups. Two non-overlapping groups, right- and left-hand preference, were identified. Writing hand was highly correlated with hand-preference group, as only three individuals in the entire sample wrote with the non-preferred hand. The expected unimodal distributions of performance asymmetry scores, known as laterality quotients (LQs), were seen. However, when those LQs were viewed from a multivariate perspective, distinct performance-based groups emerged. In more than 90% of the observed cases, the performance-based groups corresponded to preference-based groups. No sex differences were found; the relationship between preference and performance measures was not significantly different for men and women. CONCLUSIONS: Writing hand was highly correlated with scores from a hand preference inventory. In contrast, the use of a single hand performance measure, finger tapping or pegboard, did not always correctly classify an individual as right- or left-handed. However, when both of these hand performance measures were used together. individuals were correctly classified as right- or left-handed. Using this approach, two approximately non-overlapping groups, right- and left-handers, emerged. Thus, handedness is probably not a one-dimensional trait or behavior, and must be defined using multiple measures that assess different aspects of hand preference and performance. The implications for hemispheric specialization of language and neural asymmetry research are discussed.

Adult↗

Dyslexia, left-handedness, and immune disorders.

OBJECTIVE: To illuminate a possible three-way association between dyslexia, immune disorders, and left-handedness. Geschwind's, Behan's, and Galaburda's hypotheses have been of special interest in this connection. DESIGN: Statistical analysis based on general assessment of the prevalence of the three aforementioned conditions. PARTICIPANTS: There were 734 children included from a total of 1165 in grade 6 (about 12 years of age) in the municipality of Stavanger, Norway. SETTING: Educational and demographic statistics indicate that the municipality of Stavanger is representative of the national population at large regarding the three conditions examined. MAIN OUTCOME MEASURES: A screening test with high reliability and validity was used to assess reading ability. It measured word recognition and phonological decoding. The questionnaires that recorded the students' handedness and immune disorders were filled in by the parents. Handedness was assessed by a Norwegian version of the Oldfield Inventory. A questionnaire concerning allergies and asthma was used to assess the prevalence of immune disorders. RESULTS: The bivariate analyses disclosed a significant association between handedness and dyslexia and a significant but weak association between handedness and immune disorders. No significant association was found between dyslexia and immune disorders. A triadic analysis yielded the following: 66.7% of the left-handed dyslexic children had immune disorders (P > .05); 42.1% of the left-handed children with immune disorders had dyslexia (P < .01); and 32% of the dyslexic children with immune disorders were left-handed (P < .05). CONCLUSIONS: There seems to be some association between dyslexia, left-handedness, and immune disorders. Of the three factors, handedness seems to be the most important association. The findings lend some support to the one interpretation of the hypotheses of Geschwind, Behan, and Galaburda.

Adolescent↗

Parental and perinatal factors influencing the development of handedness in captive chimpanzees.

It has been proposed that human right handedness is determined by genetic factors associated with the emergence of language, whereas non-human primate handedness is determined by random, non-genetic factors. These different mechanisms account for differences in the distribution of handedness between human and non-human primates. Here we report evidence that genetic factors play a role in the determination of handedness in chimpanzees. We further report that differential rearing has no influence on the expression of handedness in related individuals. Contrary to many theories of the origin of handedness, these results indicate that genetic factors have a significant influence on handedness in chimpanzees.

Animals↗

Left-handedness in twins: incidence and patterns of performance in an adolescent sample.

Data on handedness and cognitive performance in an adolescent sample of same-sex twins were collected, and questions about incidence of left-handedness in twins and the relation between handedness and cognitive performance were considered. Same-sex twins have been found to have a higher incidence of left-handedness than that usually reported in the general population. There is a high incidence of handedness discordance (one twin right-handed and his cotwin left-handed) in both monozygotic and dizygotic twin pairs. In this sample, males and Blacks had particularly high rates of left-handedness. Among the monozygotic and dizygotic discordant pairs, quite different patterns of cognitive performance were found. On the Raven Progressive Matrices, the Columbia Test of Mental Maturity, and the Peabody Picture Vocabulary Test, the left-handers did better than their right-handed cotwins in the monozygotic pairs and the right-handers did better than their left-handed cotwins in the dizygotic pairs. Within subjects, no signficant differences were found for superiority of spatial or verbal abilities for either right-handers or left-handers. No general statements can be made about the performance of left-handed twins, since performance differs according to zygosity and handedness of cotwin configurations.

Adolescent↗

A gene-culture model of human handedness.

A model of handedness incorporating both genetic and cultural processes is proposed, based on an evolutionary analysis, and maximum-likelihood estimates of its parameters are generated. This model has the characteristics that (i) no genetic variation underlies variation in handedness, and (ii) variation in handedness among humans is the result of a combination of cultural and developmental factors, but (iii) a genetic influence remains since handedness is a facultative trait. The model fits the data from 17 studies of handedness in families and 14 studies of handedness in monozygotic and dizygotic twins. This model has the additional advantages that it can explain why monozygotic and dizygotic twins and siblings have similar concordance rates, and no hypothetical selection regimes are required to explain the persistence of left handedness.

Biological Evolution↗

Earedness and handedness: distribution in a German sample with some family data.

There are only few data on the relative contribution of genetical factors to ear preference ("earedness"). We studied the distribution of earedness and handedness in a sample of 292 families and 36 offspring pairs. The incidence of nonright-earedness was found to be 35% and was not related to age or gender. In the same sample the incidence of nonright-handedness amounted to about 9% and was characterized by a significant prevalence in men. The distribution of handedness did not differ significantly between parents and children. We found that children's earedness and handedness were related to parental preferences. However, no paternal or maternal effect was found. The frequency of left-earedness and left-handedness of children is directly proportional to the number of left-sided parents. These results suggest that the direction of ear preference and handedness is genetically determined. But there is no genetic association between handedness and earedness.

Adult↗

Familial handedness and sex differences in strength of hand preference.

Handedness inventory scores and details of familial handedness were obtained for 54 males and 71 females. For males the handedness distributions of subjects with and without familial sinistrality (FS) did not differ significantly. For females more extreme handedness scores were observed for subjects with FS in both left and right handed ranges of the handedness distribution. Sex differences in handedness were apparent only in subjects with FS, where females displayed more extreme scores at both ends of the distribution. These results are discussed in terms of possible genetic, environmental and other influences on the expression of manual asymmetry and it is concluded that at present we have insufficient information to be able to adequately explain variations in handedness in terms of one or more such influences.

Adolescent↗

Handedness and anxiety in normal and clinical populations.

Previous research has yielded inconclusive evidence as to the relationship between handedness and anxiety. In order to further examine this relationship, two studies were carried out. In the first study, university students (N = 167) completed the Edinburgh Handedness Inventory, the Fear Questionnaire, and the Maudsley Obsessive Compulsive Inventory. No evidence was found to suggest that phobic fears are more prevalent or more severe among individuals with a tendency to left-handedness than among pure right-handers. Statistical tests reveled a marginally significant positive association between social phobia scores and right-handedness. In the second study, handedness was assessed in 77 anxiety disorder patients and compared with handedness patterns in normal controls. Again, no support was found for the claim that anxiety and left-handedness are related to each other. However, the normal pattern of women being more right-handed than men was reversed in the anxiety disorder group.

Adult↗

Handedness, sexual orientation, and gender-related personality traits in men and women.

This study assessed large numbers of heterosexual and homosexual men and women on handedness and gender-related personality traits. Initial analyses employed a dichotomous measure of handedness (right-handed vs. non-right-handed). For men and women combined, homosexual participants had 50% greater odds of being non-right-handed than heterosexual participants, a statistically significant difference. Homosexual men had 82% greater odds of being non-right-handed than heterosexual men, a statistically significant difference, whereas homosexual women had 22% greater odds of being non-right-handed than heterosexual women, a nonsignificant difference. When participants were classified into five graduated categories of handedness, both men and women showed significant homosexual-heterosexual differences in handedness distributions. Within groups, handedness showed a number of weak but statistically significant associations with sex-typed occupational preferences, self-ascribed masculinity, and self-ascribed femininity, but not with instrumentality or expressiveness. Rates of non-right-handedness were virtually identical for heterosexual men and women, suggesting that sex differences in handedness may result from higher rates of homosexuality in men.

Adult↗

Prevalence and handedness correlates of traumatic injuries to the permanent incisors in 13-17-year-old adolescents in Erzurum, Turkey.

The objectives of the present study were to explore the relationship between dental trauma and handedness, and to assess the prevalence of traumatic injuries to the permanent incisors of 13-17-year-old patients, seeking treatment for various dental conditions in Erzurum, Turkey. A questionnaire focusing on handedness was administered to these patients. Handedness was assessed by the Edinburgh Handedness Inventory (Oldfield, 1971). Hand preference was divided into two classes for convenience in data analysis: (i) right-handers (GSc from 80 to 100); and (ii) left-handers (GSc from -80 to -100). This study included the 13-17-year-old group patients who had GSc as described above. Thus, the present study was carried out on 2180 (1252 male and 928 female, with a mean age of 14.9 years) out of 2392 patients. The clinical examinations and radiographic assessments were performed in full-designed dental chairs. Preliminary analysis showed no differences in rates of handedness with respect to sex and age. Overall, 10.4% of the patients were left-handers. A total of 292 (13.4%) of 2180 patients examined had one or more traumatized permanent incisors. The proportion of dental trauma was significantly higher in males than in females, 17.41% in males as compared to 7.97% in females; and ratio of the affected males to females was about 2.18. Sex difference in the prevalence of traumatized permanent incisors was statistically significant (P < 0.001). That is, males had a significantly higher risk of dental trauma than females (P < 0.001; odds ratio: 2.49; 95% confidence interval (CI) 1.88, 3.23). There was a higher level of traumatized permanent incisors among left-handers than among right-handers. 28.3% of left-handers and 11.7% of right-handers had dental trauma. This difference in the prevalence of traumatized permanent incisors for handedness was statistically significant (P < 0.001). Indeed, left-handers had a significantly higher risk on dental trauma than right-handers (P < 0.001; odds ratio: 3.09; 95% CI 2.23, 4.29). The primary causative factor in the occurrence of trauma was the fall (27.7%). Then came violence and fight as the second most frequent cause of trauma (24%), followed by sports injury (18.8%). Trauma resulting from collisions and traffic accidents were accounted as 13.7 and 11.3% of all cases, respectively. The other causes were 4.5%. In conclusion, the present study suggests that left-handed adolescents have more frequent permanent incisor tooth trauma than right-handed adolescents. Left-handedness, therefore, appears to be a risk factor for trauma in 13-17-year-old adolescents.

Adolescent↗

Comparative and familial analysis of handedness in great apes.

Historically, population-level handedness has been considered a hallmark of human evolution. Whether nonhuman primates exhibit population-level handedness remains a topic of considerable debate. This paper summarizes published data on handedness in great apes. Comparative analysis indicated that chimpanzees and bonobos show population-level right handedness, whereas gorillas and orangutans do not. All ape species showed evidence of population-level handedness when considering specific tasks. Familial analyses in chimpanzees indicated that offspring and maternal (but not paternal) handedness was significantly positively correlated, but this finding was contingent upon the classification criteria used to evaluate hand preference. Overall, the proportion of right handedness is lower in great apes compared with humans, and various methodological and theoretical explanations for this discrepancy are discussed.

Animals↗

[Medical problems of handedness].

Handedness is one example of many forms of behavioral lateralization seen in humans. In the present review the practical relevance and the problems of left-handedness are discussed. Left-handedness has existed in a small subset of the human population, approximately 8%, since the origin of man. The incidence of left-handedness as usually defined is consistent among human populations. An understanding of handedness may lead to valuables clues as to how the brain becomes organised in the way it does. Several authors suggested a pathological handedness explaining the origin of laterality in man. There is a general agreement that sinistrality can occur as a result of pre- or perinatal damage to the left hemisphere. A disproportionate number of sinistrals is found in clinical populations. The review indicates that there is no sure evidence to suggest that left-handedness is a pathological sign.

Brain↗

Wild chimpanzees show population-level handedness for tool use.

Whether nonhuman primates exhibit population-level handedness remains a topic of considerable theoretical and empirical debate. One continued subject of discussion is whether evidence of population-level handedness in primates is confined to studies in captive animals or whether it is in both captive and wild subjects. Here, we report evidence of population-level handedness in wild chimpanzees for a tool-use task known as "termite-fishing." We subsequently compared the handedness for termite-fishing with other published reports on handedness for nut-cracking and wadge-dipping and found task-specific differences in handedness. Last, when combing all of the published data on tool use in wild chimpanzees, we show that hand preferences are heritable. Contrary to previous claims, our results demonstrate that population-level handedness is evident in wild chimpanzees and suggest that the antecedents of lateralization of function associated with hand use were present at least 5 million years ago, before the Pan-Homo split.

Animals↗