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The relationship between impulsivity, aggression, and impulsive-aggression in borderline personality disorder: an empirical analysis of self-report measures.

Impulsivity has been repeatedly identified as a key construct in BPD; however, its precise definition seems to vary especially regarding the overlap with aggression. The term impulsive-aggression , also generally seen as central to an understanding of BPD, seems to address itself to the interface between the two, but has itself been used inconsistently in the literature, sometimes having reference to a unitary phenotypic dimension, and at other times suggesting some combination of distinct traits. This study examined the relationship between multiple measures of impulsivity, aggression, and impulsive-aggression in a BPD sample ( N = 92) in order to clarify the relationship between these measured constructs in this clinical population. Results show little relationship between measures of aggression and impulsivity in BPD, with measures of impulsive-aggression correlating strongly with measures of aggression only. Implications of the present results for future research and clinical work with BPD are discussed.

Adolescent↗

The effects of relationship aversive female partner behavior on attributions and physiological reactivity of verbally aggressive and non-aggressive males.

The present study assessed the effects of aversive female partner behavior on cognitive attributions and physiological reactivity in verbally aggressive and non-aggressive college males (N = 39). Participants were presented four audiotaped vignettes which depicted hypothetical dating situations in which the female's behavior was relationship aversive or non-relationship aversive. Participants' physiological reactivity (i.e., systolic blood pressure, diastolic blood pressure, and heart rate) was obtained before and after hearing each vignette. Attributional responses were obtained following the presentation of all vignettes. Relationship aversive partner behavior was expected to produce greater increases in attributional and physiological reactivity than non-relationship aversive partner behavior. Additionally, verbally aggressive males were expected to demonstrate greater negative intent and responsibility attributions and evidence greater physiological reactivity for situations involving relationship aversive partner behavior than were non-aggressive males.As hypothesized, results showed that relationship aversive partner behavior produced greater increases in systolic and diastolic blood pressure than did non-relationship aversive partner behavior. Results also showed that verbally aggressive males evidenced significantly greater negative attributions to relationship aversive partner behavior than did non-aggressive males. The potential interaction between physiological reactivity and attributions in explaining males' verbally aggressive behavior toward their female partners is discussed.

Adolescent↗

Aggression in painting - painting as a means of release of aggression.

Painting is a primordial expression. It is not as rigidly defined, edited and criticized as verbal expression. On the other hand, society is more tolerant of painting, and subjects otherwise taboo, like sex, are not rejected. Through painting, aggression can be expressed in different ways, by using piercing and sharp forms; colors that clash; color can be put on the canvas with anger, used as a material. Aggression can also be expressed in the content of the painting, like in a story with an aggression plot. When we encourage individuals to channel their aggression in socially tolerated ways, we teach the aggressive person to release his aggression without jeopardizing his place in society and help him to accept socially approved values and attitudes. We can define this achievement as a step towards the social rehabilitation of the aggressive individuals. The paintings, 16 in all, of 8 mental patients are analyzed.

Adult↗

Relational aggression, overt aggression, and friendship.

This study (n = 315 9-12-year-olds) was conducted to assess whether the social problems that relationally and overtly aggressive children typically experience in the peer group context are also exhibited in the dyadic, friendship context. The qualities of children's friendships (e.g., levels of intimacy) and of the importance of those qualities (e.g., the importance of intimacy) were assessed with self-report instruments adapted from past research. Results indicated that the friendships of relationally aggressive children were characterized by relatively high levels of intimacy, exclusivity/jealousy, and relational aggression within the friendship context. In contrast, the friendships of overtly aggressive children were characterized by engaging together in aggressive acts toward those outside the friendship. In addition, overtly aggressive children placed relatively high importance on these coalitional acts and on companionship with their friends. Implications for our understanding of aggressive children and for our knowledge of children's friendships are discussed.

Aggression↗

Use of a modified version of the Overt Aggression Scale in the measurement and assessment of aggressive behaviours following brain injury.

Aggressive behaviour creates a significant challenge in neurorehabilitation. Despite the success in using behaviour modification principles in the treatment of post-acute behavioural problems, psychopharmacological approaches to the management of aggression are more frequently reported. However, inconsistencies apparent in the literature hinder inter-study comparisons of treatment methods. These include severity of brain injury, neuropsychological status and rigour of experimental methodology used. Data about aggression is also inconsistently reported, especially with regard to classification and severity. Descriptions of how aggressive behaviour responded to pre-treatment is also generally absent. In this paper an observational rating scale is described in an attempt to address these inconsistencies. The Overt Aggression Scale has been modified by increasing the range of interventions to reflect current practice in neurorehabilitation, and by changing the language to make it suitable for UK users. A range of antecedents has also been added to make the scale useful in behavioural analysis. Preliminary results indicate inter-rater reliability is good, and it is a valid indicator of type and severity of aggression. Antecedents and interventions used in the management of aggressive behaviours in neurorehabilitation are also illustrated. Clinical use of the scale is also discussed.

Aggression↗

bcl-2 protein expression in aggressive and non-aggressive basal cell carcinomas.

bcl-2, the well known anti-apoptotic gene, cloned more than a decade ago, promotes cell viability without promoting cell proliferation. With few exceptions, high bcl-2 protein expression is associated with a favourable outcome in epithelial tumours. bcl-2 immunoreactivity in basal cell carcinomas (BCCs) is contradictory, with 67-100% immunopositivity being reported. Although BCCs are traditionally regarded as low-grade, indolent tumours, aggressive BCCs (A-BCCs) are mutilative, locally destructive tumours that often recur. bcl-2 protein expression as a predictor of BCC aggressiveness is poorly documented in the English-language literature. The bcl-2 protein immunoprofile of 50 clinically non-aggressive (NA-BCCs) and 25 clinically A-BCCs was investigated. Of the latter, 17 manifested with one, two or three recurrences. bcl-2 protein expression in each of the recurrences was also evaluated. bcl-2 expression was scored as follows: 0-5% positive cells=negative, 6-25%=1+, 26-50%=2+, 51-75%=3+, >75%=4+. "High" labeling encompassed 3+ or 4+ labeling while "low" labeling referred to 1 + or 2 + labeling. Although bcl-2 positivity was noted in all BCCs, low bcl-2 labeling was a statistically significant feature of A-BCCs (p < 0.01). High bcl-2 labeling of NA-BCCs was a reflection of the bcl-2 labeling of the dominant constituent nodular or superficial subtypes. Micronodular BCCs revealed 2+ or 3+ labeling. Initial and recurrent A-BCCs with a pure or predominantly infiltrative component, demonstrated 1+ or 2+ bcl-2 labeling. The differential bcl-2 expression in the various clinicopathological subtypes of BCCs suggests that, despite the common derivation of these tumours from a primitive basaloid stem cell and a limited potential for metastasis, they form a heterogeneous group of tumours that differ markedly in histologic and biological behaviour. While the superficial and nodular BCCs are indolent slow-growing tumours with high bcl-2 labeling, the aggressive BCCs are infiltrative, desmoplastic tumours with low bcl-2 labeling. In mixed tumours, heterogeneity of labeling is a distinctive feature and is contributed to in part by the labeling trends of the different histological subtypes. The micronodular BCC shows varied bcl-2 labeling but in combined tumours occupies a niche intermediate between the non-aggressive nodular and superficial and the aggressive infiltrative subtypes. The initial and subsequent biopsies of recurrent, adequately excised BCCs share a pure or mixed, predominantly infiltrative, stroma-rich histomorphology with low bcl-2 labeling, reflecting the immunoprofile of a more aggressive growth pattern.

Adult↗

Bcl-2-related proteins, alpha-smooth muscle actin and amyloid deposits in aggressive and non-aggressive basal cell carcinomas.

Aberrant expression of bcl-gene products has been implicated in the development of non-melanoma skin cancers. Recently, altered expression of alpha-smooth muscle actin has been proposed as predictive of tumour behaviour in basal cell carcinomas. The purpose of this study was to compare the aggressive and non-aggressive basal cell carcinomas in terms of bcl-gene products and alpha-smooth muscle actin expression. Fifty excisional biopsy samples were studied by immunohistochemical technique for the differential expressions of bcl-2, bax, bcl-x and alpha-smooth muscle actin. Bcl-2, bcl-x and bax were expressed in 34 (68%), 38 (76%) and 41(82%) specimens, respectively. Immunoreactivity for alpha-smooth muscle actin was noted both in tumour nests (64%) and within the stroma (54%). There was a significant difference between aggressive and non-aggressive basal cell carcinomas in terms of bcl-2 and stromal alpha-smooth muscle actin immunoreactivity. Non-aggressive basal cell carcinomas display a concordant expression of bcl-family proteins, whereas aggressive tumours reveal a discordant pattern. An increased expression of stromal alpha-smooth muscle actin with a concomitant decrease or loss of bcl-2 expression may be highly suggestive of aggressiveness in basal cell carcinoma.

Actins↗

Effects of background anger, provocation, and methylphenidate on emotional arousal and aggressive responding in attention-deficit hyperactivity disordered boys with and without concurrent aggressiveness.

We investigated the effects of background anger, provocation, and methylphenidate on emotional, physiological, and behavioral responding in children with attention-deficit hyperactivity disorder (ADHD) with and without concurrent aggression. Our study revealed that ADHD boys showed more emotional and physiological distress when exposed to an interaction in which an administrator chastised each boy's favorite counselor, compared to a friendly interaction between the two adults. The background anger manipulation did not affect the aggressive behavior of the boys against an opponent in an aggressive game. High-aggressive (HA) ADHD boys were more likely to respond to provocation with aggression than low-aggressive (LA) ADHD boys, but only LA boys showed increased physiological reactivity with increasing provocation. Methylphenidate resulted in increased heart rates under all conditions and did not interact with any of the other findings.

Adult↗

Ipsapirone challenge in aggressive men shows an inverse correlation between 5-HT1A receptor function and aggression.

Previous studies have suggested that 5-HT(1A) receptor function is linked to aggression. We studied 12 healthy men selected to have high trait levels of aggression. They filled in various self-rating measures of aggression, and underwent a double blind, crossover challenge with ipsapirone (20 mg orally) and a placebo. On both occasions, we measured the endocrine (ACTH, cortisol, growth hormone and prolactin), hypothermic and bodily symptom responses every 30 min for 180 min. We found that subjects with blunted neuroendocrine responses to the ipsapirone challenge had significantly higher self-ratings of aggression on a number of measures. The same relationship held using the bodily symptom response to ipsapirone: blunted responses were associated with higher ratings of aggression. We conclude that impaired 5-HT(1A) receptor function is associated with increased aggressiveness.

Adult↗

Postpartum aggression in rats does not influence threshold currents for EBS-induced aggression.

Female Wistar rats were tested for aggressive behaviour induced by electrical brain stimulation (EBS) in the lateral hypothalamus. Threshold currents for the induction of aggression were determined on several days before the females were paired with experienced breeder males. Beginning in the second week of pregnancy threshold current values were measured once or twice weekly. No change in thresholds was observed either during pregnancy, the early postpartum period or after weaning. Lactation was the only period during which the females were spontaneously aggressive towards male intruders in their home cage, but not in the EBS cage. Analysis of bite targets revealed no difference between the bite patterns in the postpartum maternal aggression test and the EBS-induced attacks. The results demonstrate that the change in physiological and hormonal status in pregnant and lactating females has no influence on the propensity to attack during EBS. The similarity in wound patterns does not advocate a major difference in the types of aggression studied. We speculate upon the nature of EBS-induced attacks as the activation of a rigid, final pathway of aggression which is rather insensitive to mild modulations.

Aggression↗

Aggression by ovariectomized female rats with testosterone implants: competitive experience activates aggression toward unfamiliar females.

Female hooded rats (250 to 325 g) were ovariectomized and bilaterally implanted with testosterone-filled or empty Silastic tubes. The testosterone-filled space in each tube was 10 mm long and this should produce a serum testosterone concentration 4 to 5 times that of an intact female, but well below that of a male. Three weeks following surgery, half of the animals with testosterone implants were housed with an animal with an empty implant and left for 6 weeks. The remaining animals were placed on a 23-hr food deprivation schedule, housed in testosterone implant/empty implant pairs, and then subjected to a series of food competition tests. Following the competition tests, all animals were individually tested in their living cage for aggression toward an unfamiliar female. In food competition, females with testosterone implants were more successful and more aggressive than their cagemates with empty implants. When tested for aggression toward an unfamiliar intruder, females with testosterone implants given competitive experience were more aggressive toward an intruder than were their cagemates with empty implants or females with testosterone implants not given the competitive experience. Females with testosterone implants but without competitive experience were not more aggressive toward an unfamiliar female than were their cagemates with empty implants. These results suggest that, in ovariectomized females with testosterone implants, hormone-dependent aggression fostered by a competitive situation is displayed toward unfamiliar females.

Aggression↗

Ethanol effects on aggression of rats selected for different levels of aggressiveness.

Male rats confronting strange male intruders into their home cages were divided into nonaggressive, low-to-intermediate aggressive, and highly aggressive groups. In tests with low (0.3 and 0.6 g/kg) doses of ethanol the nonaggressive rats did not become aggressive; low-intermediate animals showed a significant increase in frequency and duration of attack behaviors; but highly aggressive rats displayed a slight (nonsignificant) decline. A higher ethanol dose (1.2 g/kg) consistently led to decreased aggression. This rate-dependency of the enhancement of aggression by low doses of ethanol is concordant with a view that the mechanism of this enhancement involves ethanol interference with some mechanism which normally acts to limit or inhibit attack.

Aggression↗

Patterns of violent aggression-induced brain c-fos expression in male mice selected for aggressiveness.

Mice selected for aggressiveness (long and short attack latency mice; LALs and SALs, respectively) constitute a useful tool in studying the neural background of aggressive behavior, especially so as the SAL strain shows violent forms of aggressiveness that appear abnormal in many respects. By using c-Fos staining as a marker of neuronal activation, we show here that agonistic encounters result in different activation patterns in LAL and SAL mice. In LALs, agonistic encounters activated the lateral septum, bed nucleus of stria terminalis, medial amygdala, paraventricular nucleus of the hypothalamus, anterior hypothalamic nucleus and tuber cinereum area (both being analogous with the rat hypothalamic attack area), dorsolateral periaqueductal gray, and locus coeruleus. This pattern is similar with that seen in the territorial aggression of male mice, rats and hamsters, and non-lactating female mice. SALs showed strong fight-induced activations in the central amygdala and lateral/ventrolateral periaqueductal gray. In this strain, no activation was seen in the lateral septum and the dorsolateral periaqueductal gray. This pattern is similar with that seen in other models of violent aggression, e.g., in attacks induced by hypothalamic stimulation in rats, quiet biting in cats, lactating female mice, and hypoarousal-driven abnormal aggression in rats. We suggest here that the excessive activation of the central amygdala and lateral/ventrolateral periaqueductal gray--accompanied by a smaller activation of the septum and dorsolateral periaqueductal gray--underlay the expression of violent attacks under various circumstances.

Aggression↗

Behavioural differences between artificially selected aggressive and non-aggressive mice: response to apomorphine.

The present study reports a first attempt to unravel the neurochemical background that underlies the difference in behavioural profiles between aggressive and non-aggressive male mice. For this purpose two bidirectionally selected lines for attack latency (SAL and LAL) were used. In pursuit of Cools'9 approach, the susceptibility of individuals of both selection lines to the dopamine agonist apomorphine was measured. The apomorphine was injected subcutaneously at dose levels of 2.5 and 5.0 mg/kg. Apomorphine is considered to stimulate the dopamine receptors in the telencephalon and induces stereotyped behaviour. The responsivity to apomorphine can be rated as a total stereotypy-score. SAL (aggressive) mice showed a significantly greater enhancement of stereotyped behaviour in response to apomorphine than LAL (non-aggressive) mice. In addition, it was demonstrated that this difference is of a quantitative rather than qualitative character. Pharmacokinetic variation between the two lines could be ruled out as cause of the difference. Hence, it was concluded that SAL mice are more sensitive to apomorphine than LAL males, which provides evidence for a difference in the dopaminergic system between the two selection lines. It was suggested that this difference underlies the difference in flexibility in behaviour between aggressive and non-aggressive male mice.

Aggression↗

Brain structures and neurotransmitters regulating aggression in cats: implications for human aggression.

1. Violence and aggression are major public health problems. 2. The authors have used techniques of electrical brain stimulation, anatomical-immunohistochemical techniques, and behavioral pharmacology to investigate the neural systems and circuits underlying aggressive behavior in the cat. 3. The medial hypothalamus and midbrain periaqueductal gray are the most important structures mediating defensive rage behavior, and the perifornical lateral hypothalamus clearly mediates predatory attack behavior. The hippocampus, amygdala, bed nucleus of the stria terminalis, septal area, cingulate gyrus, and prefrontal cortex project to these structures directly or indirectly and thus can modulate the intensity of attack and rage. 4. Evidence suggests that several neurotransmitters facilitate defensive rage within the PAG and medial hypothalamus, including glutamate, Substance P, and cholecystokinin, and that opioid peptides suppress it; these effects usually depend on the subtype of receptor that is activated. 5. A key recent discovery was a GABAergic projection that may underlie the often-observed reciprocally inhibitory relationship between these two forms of aggression. 6. Recently, Substance P has come under scrutiny as a possible key neurotransmitter involved in defensive rage, and the mechanism by which it plays a role in aggression and rage is under investigation. 7. It is hoped that this line of research will provide a better understanding of the neural mechanisms and substrates regulating aggression and rage and thus establish a rational basis for treatment of disorders associated with these forms of aggression.

Aggression↗

Individual variation in aggression of feral rodent strains: a standard for the genetics of aggression and violence?

This article summarizes the broad individual differences in aggressiveness and its relationship with several other behavioral, physiological, and neurobiological characteristics that exist in an outbred laboratory strain of male feral rats. Based on the observations that the individual level of offensive aggressive behavior (i.e., the tendency to defend the home territory) is strongly related to the way they react to various other environmental challenges, it is argued that the individual's level of offensiveness is an important indicator and component of a more traitlike behavioral physiological response pattern (coping strategy) to environmental demands. The coping style of aggressive animals is principally aimed at a (pro)active prevention or manipulation of a stressor, whereas the nonaggressive individuals tend to passively accept or react to it. The (pro)active and reactive/passive behavioral coping styles are clearly associated with distinct patterns of autonomic/endocrine (re)activity and underlying neurobiological correlates and determinants. Consequently, these individual differences in aggression/coping style may not only determine the individual vulnerability to stress-related disease, and hence be an important factor in the population dynamics of the species, but may also determine responsivity to pharmacotherapeutic treatments. From an animal modeling point of view, it is argued that the aggressive extremes of this variation may, under the proper testing conditions, have an enhanced propensity to develop pathological forms of aggression and/or coping, for example, antisocial traits, violence, or impulsivity disorders. Finally, it is proposed that the use of these feral animals as base "material" for genetic association (i.e., QTL search, mRNA differential expression, nucleic acid microarray analysis) and manipulation (i.e., gene silencing or amplification by antisense ODN, siRNA, and/or viral gene-transfer methodologies) studies would most likely be the best option for dissecting successfully the genetic basis of both normal and pathological forms of aggression and/or coping.

Aggression↗

Effects of repeated experience of aggression on the aggressive motivation and development of anxiety in male mice.

The sensory contact model allowed aggressive behavior to be formed in male mice as a result of repeated experience of victory in daily social confrontations. In individuals of the low aggressivity, high emotionality line CBA/Lac, repeated experience of aggression led to the development of anxiety, assessed in the elevated cross maze test. Males showed increases in aggressive motivation, measured in terms of increases in behavioral reactions to conspecifics in the partition test. It is concluded that repeated experience of aggression provokes the development of anxiety in male mice and that the level of developing anxiety, like its behavioral correlates, depends on the duration of aggressive experience and the mouse line studied.

Aggression↗

Effects of deindividuating situational cues and aggressive models on subjective deindividuation and aggression.

This experiment demonstrated that a subjective state of deindividuation mediates the effect of deindividuating situational cues on aggression displayed by small groups (n = 4) of coacting aggressors. The deindividuated state was composed of two factors, Self-Awareness and Altered Experiencing, both of which had a causal influence on aggressive behavior. These data are interpreted in terms of deindividuation theories which assume that certain input variables reduce self-awareness and concern about social evaluation and thereby weaken the restraints against expressing antisocial behavior. Also as predicted, compared with a no-model control condition, a high-aggressive model disinhibited overt displays of aggression, whereas a low-aggressive model inhibited aggression among both individuated and deindividuated group members.

Aggression↗