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Mortality and tardive dyskinesia: long-term study using the US National Death Index

Published online by Cambridge University Press:  02 January 2018

Charles E. Dean*
Affiliation:
Mental Health Service Line, Minneapolis Veterans Administration Hospital, Minneapolis, Minnesota, USA
Paul D. Thuras
Affiliation:
Mental Health Service Line, Minneapolis Veterans Administration Hospital, Minneapolis, Minnesota, USA
*
Correspondence: Charles E. Dean, Mental Health Service Line, 116A, One Veterans Drive, Minneapolis, MN 55417, USA. Email: charles.dean@med.va.gov
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Abstract

Background

Whether the development of tardive dyskinesia leads to an increase in mortality is still unclear.

Aims

To explore the relationship between tardive dyskinesia and mortality over a 10-year period, using the National Death Index.

Method

Death certificates were obtained from the National Death Index on 1621 people repeatedly assessed for tardive dyskinesia by trained raters. Variables with the potential for influencing survival time were also investigated.

Results

Tardive dyskinesia was significantly associated with an increase in mortality (P<0.001), but this association became non-significant when drug course and age were entered in the regression analysis. Those who had taken only conventional antipsychotics were twice as likely to die compared with those taking atypical agents (P<0.02). For those aged 53–65 years, conventional agents were associated with a sevenfold increase in mortality.

Conclusions

Older individuals with tardive dyskinesia treated with conventional antipsychotics appear to have a shortened survival time.

Type
Papers
Copyright
Copyright © Royal College of Psychiatrists, 2009 

Whether the development of tardive dyskinesia is associated with a shortened survival time has been open to question. A recent meta-analysis Reference Ballesteros, Gonzalez-Pinto and Bulbena1 of seven studies found that tardive dyskinesia is a weak risk factor for increased mortality, with an odds ratio (OR) in a fixed-effects model of 1.4 (95% CI 1.2–1.7, P<0.005). However, the authors described recurrent methodological problems, including small sample sizes, a follow-up time of less than 5 years in three studies and varying definitions of tardive dyskinesia. We further note that six studies lacked data on interrater reliability. Despite the advent of atypical antipsychotics, the continuing use of conventional antipsychotics in poorer countries Reference Janno, Holi and Tuisko2 and in some segments of more economically advantaged areas Reference Owen, Feng, Thrush, Hudson and Austen3 makes this question still important, particularly in view of the metabolic risks associated with atypical antipsychotics. Reference Allison, Mentore, Heo, Chandler, Cappelleri and Infante4Reference Koro, Fedder, L'Italien, Weiss, Magder and Kreyenbuhl6

Method

The Minneapolis Veterans Administration Medical Center requires that each patient exposed to antipsychotics be evaluated at least yearly for tardive dyskinesia by raters repeatedly trained to reliability in using the Dyskinesia Identification System-Coldwater version (DIS-CO), Reference Sprague, Kalachnik, Breuning, Davis, Ullmann and Cullari7 a scale which is equivalent in sensitivity Reference Dean, Russell, Kuskowski, Caligiuri and Nugent8 to the Abnormal Involuntary Movement Scale (AIMS). Reference Guy9 Dyskinesia Identification System scores were reviewed by the attending physician who had to reach a conclusion regarding the presence or absence of tardive dyskinesia based on the Schooler–Kane criteria. Reference Schooler and Kane10 Depending on staffing, only two to three trained raters were used during this study, with κ coefficients ranging from 0.80 to 0.85. Demographic data, smoking history, Axis I and Axis III diagnoses, 11 names and doses of medications extant at the time of each rating, and previous DIS-CO scores were entered in a computerised database. A waiver of authorisation was obtained from the Minneapolis Veterans Administration Medical Center Human Studies Subcommittee to submit detailed identification data on 1626 patients to the National Death Index. 12 Observation times ranged from 3 to 5074 days, with a mean observation time of 1446 days (s.d.=1179.3). The National Death Index, after ensuring that this study met their standards with regard to confidentiality and appropriate use of death certificate data, supplied us with certificates noting the causes of death in 1200 people. Pilot data had indicated that 24 of 386 people had died over a 10-year period. A power analysis indicated that utilisation of the complete database would give an 87% likelihood of detecting differences in mortality at a moderate effect size.

Data analysis

With survival time as the censored, failure-time, dependent variable, we used the Cox proportional hazards regression, a multivariate extension of the Kaplan–Meier method, to estimate the relative risk of mortality associated with several predictor variables, including time since last examination, age, the diagnosis of tardive dyskinesia (ever or current), course of antipsychotic use (conventional antipsychotics only, atypical antipsychotics only or a mix), and the interaction of tardive dyskinesia diagnosis with drug course. For these analyses the observation period was from the date of the last examination to death or the censor period of 31 December 2001.

Results

The study population (Table 1) was predominantly male (95%), White (91%) and African–American (6.6%). Overall, 60% had received only conventional antipsychotics and 23% received both atypical antipsychotics and conventional antipsychotics or switched use. A third developed tardive dyskinesia at some point during follow-up. Of the 1208 individuals with definitive mortality data from the National Death Index, 205 (17.1%) had died during the observation period. The mean time to death was 1030.1 days (s.d.=976.9) from the initial observation v. 1551 days (s.d.=1202.9) for those alive during the same period. The mortality rate was 5.07 per 100 patient years.

Table 1 Characteristics of the sample

Characteristics Sample (n=1208)
Men, % 95.5
Age at first observation, years: mean (s.d.) 49.2 (14.0)
Age at last observation, years: mean (s.d.) 53.7 (13.6)
Ethnicity, %
    White 91.0
    African–American 6.6
    Latino 1.0
    Asian 0.3
    Native American 0.1
Drug course, %
    Conventional antipsychotic 60.8
    Atypical antipsychotic 16.1
    Dual or switched use 23.0
Tardive dyskinesia
    Any, % 33.4
    DIS-CO score, mean (s.d.) 3.84 (3.63)
    Maximum DIS-CO score, mean (s.d.) 5.29 (4.66)

Individual factors associated with mortality

Risk ratios and associated statistics for individual predictors are shown in Table 2. On the initial analysis, without covariates, the presence of tardive dyskinesia, either current or remitted, was significantly associated with an increase in mortality, with a risk ratio (RR) of 1.57 (95% CI 1.23–1.99, P<0.001). A parallel analysis was conducted in which the maximum DIS-CO score was used, rather than the tardive dyskinesia diagnosis. We found that for every point increase in the DIS-CO score, there was a 5% increase in the likelihood of death (RR=1.05, 95% CI 1.03–1.07, P<0.001).

Table 2 Unadjusted predictors

Variable Coefficient s.e. Wald P RR 95% CI
Diagnosis of tardive dyskinesia (present or remitted) 0.45 0.12 13.26 <0.001 1.57 1.23-1.99
DIS-CO score (maximum) 0.05 0.01 20.72 <0.001 1.05 1.03-1.07
Use of conventional antipsychotics 0.7 0.29 5.8 0.02 2 1.13-3.53
Age, years 138.1 <0.001
    <44 1
    45-52 0.53 0.28 3.63 0.06 1.7 0.99-2.93
    53-65 1.4 0.18 64.41 <0.001 4.55 2.84-7.30
    66+ 2.05 0.17 152.02 <0.001 9.06 5.82-14.09

Age

We grouped the cohort into four categories: age <44 (the reference category), 44–52, 53–65, and 66 years and older. We found that age at the time of the last rating was significantly associated with mortality. The risk ratios were 1.70 (95% CI 0.99–2.93), 4.55 (95% CI 2.84–7.30) and 9.06 (95% CI 5.82–14.09) respectively.

Antipsychotic medication

For drug course, those who had taken conventional antipsychotics or conventional antipsychotics plus atypical antipsychotics were compared with those who had taken only atypical antipsychotics (the reference category). Those who were exposed only to conventional antipsychotics were over twice as likely to die during the observation period as those who had taken only atypical antipsychotics (RR=2.00, 95% CI=1.13–3.53, P<0.02).

Given that atypical antipsychotics had been less widely used during the early period of this study, we examined the possibility of an interaction between age and drug course, but this was not significant. In a further analysis of drug course and mortality across age strata, we noted that in the age group >44 years, the risk ratio for those taking conventional antipsychotics v. atypical antipsychotics was 2.2 (95% CI 0.3–17.4), for the group aged 44–52 years the RR=2.1 (95% CI 0.5-9.0), for those aged 53–65 the RR=2.9 (95% CI 0.71–12.1), and in those 66 years and older the RR=1.8 (95% CI 0.74–4.5).

Cox proportional hazards regression analysis

We entered the presence of tardive dyskinesia, drug course and age into a regression model (final regression model shown in Table 3). Age and drug course continued to be significantly associated with a shortened survival time, but tardive dyskinesia was no longer significant. A parallel analysis using the maximum DIS-CO score yielded similar results. An interaction term with tardive dyskinesia status and drug course was not significant.

Table 3 Final Cox proportional hazards regression model

Variable Coefficient s.e. Wald P RR 95% CI
Diagnosis of tardive dyskinesia 0.11 0.134 0.657 0.418 1.12 0.86-1.45
Use of conventional antipsychotics 0.73 0.33 5 0.025 2.08 1.1-3.96
Age, years 131.58 <0.001
    <44 1
    45-52 0.54 0.28 3.75 0.053 1.71 1.00-2.95
    53-65 1.49 0.24 38.1 <0.001 4.44 2.77-7.13
    66+ 2.17 0.23 91.69 <0.001 8.77 5.63-13.68

Tardive dyskinesia and causes of death

Using a broad classification of causes of death, we found that 23.9% had died of cardiac disease/myocardial infarction, 20.5% from cancer and 8.3% from stroke/cardiovascular disease. Death by suicide was found in 6.8% and 4.9% had died in accidents or from external causes. There were no significant differences in causes of death based on tardive dyskinesia status. Mortality rates per 100 000 per year were calculated for each category of disease and are reported in Table 4.

Table 4 Causes of death and mortality rates per 100 000

Antipsychotic
Overall Atypical only Conventional only Atypical and conventional
Cause of death n Rate per 100 000 per year n Rate per 100 000 per year n Rate per 100 000 per year n Rate per 100 000 per year
Infection 4 84.17 0 3 80.32 1 158.37
Cancer 42 883.84 0 40 1070.96 2 316.73
Diabetes 9 189.39 0 9 240.97 0
Heart disease/myocardial infarction 49 1031.15 2 518.76 44 1178.06 3 475.11
Stroke/cerebrovascular disease 17 357.74 0 15 401.61 2 316.73
Influenza/pneumonia 8 168.35 0 8 214.19 0
Chronic obstructive pulmonary disease 12 252.53 0 8 214.19 4 633.48
Liver disease 2 42.09 1 259.38 1 26.77 0
Accidents/external causes 10 210.44 0 9 240.97 1 158.37
Suicide 14 294.61 0 11 294.51 3 475.11
Other disease 38 799.66 2 518.76 32 856.77 4 633.48
All causes 205 4313.97 5 1296.91 180 4819.32 20 3167.4

Discussion

Despite the advent of atypical antipsychotics, the debate over the risk:benefit ratio of antipsychotics has become increasingly complex. Reference Abidi and Bhaskara13 This is due to the well-known neurological side-effects of conventional antipsychotics and the growing concerns over the metabolic side-effects of atypical antipsychotics, Reference McIntyre, McCann and Kennedy5,Reference Koro, Fedder, L'Italien, Weiss, Magder and Kreyenbuhl6 issues surrounding cost-effectiveness, Reference Rosenheck, Perlick, Bingham, Liu-Mares, Collins and Warren14 and evidence indicating that atypical antipsychotics have little advantage over reasonably dosed conventional antipsychotics in drop-out rates as a result of adverse events, Reference Lieberman, Stroup and McEvoy15 quality of life, Reference Rosenheck, Perlick, Bingham, Liu-Mares, Collins and Warren14 efficacy, and rates of parkinsonism and tardive dyskinesia. Reference Rosenheck, Perlick, Bingham, Liu-Mares, Collins and Warren14,Reference Lieberman, Stroup and McEvoy15

The range of problems associated with both classes of drugs leaves even well-informed clinicians, patients and families still struggling with the risk: benefit ratio, and indeed facing an even greater degree of complexity than in the era preceding the widespread use of atypical antipsychotics. Adding to this debate has been the question of shortened survival time in those who develop tardive dyskinesia, but previous studies have been inconclusive. Reference Ballesteros, Gonzalez-Pinto and Bulbena1 In this study, the initial increase in mortality found in those with tardive dyskinesia was overshadowed by the exposure to conventional antipsychotics only, which resulted in a significantly increased mortality rate compared with those taking only atypical antipsychotics. Not surprisingly, older age was a significant predictor of increased mortality, but there was no interaction between age and drug course.

Our data are supportive of a retrospective cohort study Reference Wang, Schneeweiss, Avorn, Fischer, Mogun and Solomon16 of first-time users of antipsychotics (n=22 890), aged 65 and older, in which those exposed to conventional antipsychotics had a 37% increase in mortality compared with those using atypical antipsychotics (P=0.001). Perhaps most strikingly, the time to follow-up was 180 days or less, with the risk of death being significant at <40 days and at higher doses. Cancer, HIV infection and congestive heart failure were the only conditions conferring a greater adjusted risk than did conventional antipsychotics; however, the presence of antipsychotic-induced movement disorders was not described. The presence or absence of dementia was not associated with the increase in mortality.

Whether the use of conventional antipsychotics is a consistent predictor of shortened survival time is doubtful, since the use of either conventional antipsychotics or atypical antipsychotics in people with schizophrenia was associated with a significant, fourfold increase in mortality. Reference Enger, Weatherby, Reynolds, Glasser and Walker17 In a cohort study of three US Medicaid programmes, Reference Hennessy, Bilker and Knauss18 the adjusted rate ratios for mortality, cardiac arrest and ventricular arrhythmias were higher for risperidone than haloperidol. However, the highest rate occurred in those receiving the lowest dose of risperidone, suggesting that this group may have been at higher risk and thus treated conservatively. Nevertheless, Saha et al Reference Saha, Chant and McGrath19 in their systematic review of mortality in schizophrenia have emphasised the possibility that the increasing use of atypical antipsychotics and the development of the metabolic syndrome may be in part responsible for a striking increase in the median standardised mortality ratio (SMR) from 1.84 in the 1970s to 3.20 in the 1990s, despite the fact that in most countries age-standardised SMRs have fallen. Unfortunately, the authors found only three studies examining SMRs from lower income countries, but, given this cautionary note, they found no difference in SMRs in schizophrenia across sites.

Complicating factors

Since the population in this study is composed primarily of individuals with schizophrenia, we note that an excess mortality rate in this disorder was described as early as the 19th century, Reference Brown20 long before the introduction of biologically oriented therapies. This has continued, with the most recent analysis Reference Saha, Chant and McGrath19 finding a median SMR of 2.58. Excessive deaths from both natural and unnatural causes have been widely recognised, with suicide being a prominent factor; Reference Saha, Chant and McGrath19,Reference Allebeck and Wisted21 however, others Reference Laursen, Munk-Olsen, Nordentoft and Mortensen22 have found that death from unnatural causes was lower in schizophrenia compared with unipolar, bipolar and schizoaffective disorders but only in those aged 40–79 years. None the less, these authors found excessive mortality in all of the four diagnostic groups. In a meta-analytic study, Reference Brown20 12% of all deaths and 28% of excess deaths were as a result of suicide, although deaths from unnatural causes were also prominent. Similarly, a study Reference Mortensen and Juel23 of first-admission patients admitted between 1970 and 1986 noted that of the 1100 people who died, half died by suicide.

These data are in marked contrast to our findings, wherein deaths by suicide and external causes were 6.8% and 4.9% respectively. However, the suicide rate in our study is 294.6 per 100 000 per year, similar to that described in other studies of schizophrenia. We also found substantial increases in mortality with age, in contrast to Brown, Reference Brown20 who noted a decline in mortality in schizophrenia with increasing age. Not surprisingly, others Reference Mortensen and Juel23,Reference Ösby, Correia, Ekbom, Brandt and Sparén24 have found an increase, especially in deaths from cardiovascular disease.

The assessment of mortality in schizophrenia is also complicated by increased mortality rates in other psychiatric disorders (substance misuse, ‘organic’ mental disorders, eating disorders, major depression and others), Reference Laursen, Munk-Olsen, Nordentoft and Mortensen22,Reference Harris and Barraclough25 many of which are comorbid with schizophrenia. We could not accurately assess these, since we did not use a structured diagnostic interview.

Specific factors in antipsychotic-associated mortality

In recent years there has been considerable interest in the effects of antipsychotics on cardiac status. One focus has been on rates of arrhythmia and arrest, Reference Hennessy, Bilker and Knauss18 with rate ratios of 1.3–3.2 in people with schizophrenia taking clozapine, haloperidol, risperidone or thioridazine. The rate ratios for death ranged from 2.6–5.8. However, the authors noted the difficulty in separating out treatment effects from the effects of schizophrenia. In another study, Reference Enger, Weatherby, Reynolds, Glasser and Walker17 those using conventional antipsychotics had a five times greater risk of myocardial infarction than controls, but the risk was lower with greater intensity of antipsychotic use. Cardiomyopathy has been reported with fluphenazine, risperidone and lithium, and myocarditis with clozapine, lithium and chlorpromazine. Reference Coulter, Bate, Meyboom, Lindquist and Edwards26

Several other risk factors are worth noting. In a small study, Reference Waddington, Youseff and Kinsella27 antipsychotic polypharmacy was a risk factor for shortened survival time, as was being edentulous, an older male and not being treated with anticholinergics. A recent study Reference Hippisley-Cox, Vinogradova, Coupland and Parker28 found a 308% increase in the risk of colon cancer in people with schizophrenia taking antipsychotics, even when adjusted for smoking, obesity, comorbidity, concurrent medications and socio-economic status.

Finally, antipsychotics have been shown to induce cellular toxicity Reference Dean29 via a number of mechanisms, including changes in proteins affecting cell survival, impairment of the mitochondrial respiratory chain, increases in DNA fragmentation and other changes in cell morphology. However, many studies have been short-term, and have often neglected important confounders such as polypharmacy and brain changes associated with comorbid disorders. It appears that we are badly in need of long-term studies of antipsychotic-induced neuronal changes and their influence on mortality. It does not appear, however, that the development of tardive dyskinesia carries an increased risk of mortality. Our study has several advantages over previous work, including a large population followed intensively over a decade by raters trained to reliability. This is the only study of mortality rates in tardive dyskinesia to utilise the National Death Index, which lent certainty to the fundamental question of whether a given individual had died during the observation period, in addition to giving us death certificate data on a large clinic population rated repeatedly for the presence of tardive dyskinesia. However, the demographics of the population may limit its applicability.

It appears that more attention needs to be given to discussions focusing on the risk:benefit ratio of antipsychotics. In years past, obtaining informed consent for the use of these agents has focused on the risks of incurring tardive dyskinesia and parkinsonism, but in recent years it has expanded to include the metabolic syndrome, with the associated possibility of a shortened lifespan. Is it now time to emphasise this possibility to an even greater degree, given the range of morbidity and mortality associated with these drugs?

Acknowledgements

The authors would like to thank Ms Jean M. Russell for her work in data collection, rater training and in rating examinations performed in the Tardive Dyskinesia Assessment Clinic. We also thank Robert Bilgrad, of the Division of Vital Statistics, National Center for Health Statistics, for his help in completing the National Death Index application and making the data accessible and understandable.

Footnotes

Declaration of interest

None.

References

1 Ballesteros, J, Gonzalez-Pinto, A, Bulbena, A. Tardive dyskinesia associated with higher mortality in psychiatric patients: results of a meta-analysis of seven independent studies. J Clin Psychopharmacol 2000; 20: 188–94.Google Scholar
2 Janno, S, Holi, M, Tuisko, K. Prevalence of neuroleptic-induced movement disorders in chronic schizophrenic patients. Am J Psychiatry 2004; 161: 160–3.Google Scholar
3 Owen, RR, Feng, W, Thrush, CR, Hudson, TJ, Austen, MA. Variations in prescribing practices for novel antipsychotic agents among Veteran's Affairs Hospitals. Psychiatr Serv 2001; 52: 1523–5.Google Scholar
4 Allison, DB, Mentore, JL, Heo, M, Chandler, LP, Cappelleri, JC, Infante, MC, et al. Antipsychotic-induced weight gain: a comprehensive research synthesis. Am J Psychiatry 1999; 156: 1686–96.CrossRefGoogle ScholarPubMed
5 McIntyre, RS, McCann, SM, Kennedy, SH. Antipsychotic metabolic effects: weight gain, diabetes mellitus, and lipid abnormalities. Can J Psychiatry 2001; 46: 273–81.Google Scholar
6 Koro, CE, Fedder, DO, L'Italien, GJ, Weiss, S, Magder, LS, Kreyenbuhl, J, et al. An assessment of the independent effects of olanzapine and risperidone exposure on the risk of hyperlipidemia in schizophrenic patients. Arch Gen Psychiatry 2002; 59: 1021–6.CrossRefGoogle ScholarPubMed
7 Sprague, RL, Kalachnik, JE, Breuning, SE, Davis, VJ, Ullmann, RK, Cullari, S, et al. The dyskinesia identification system-Coldwater (DIS-CO): a tardive dyskinesia rating system for the developmentally disabled. Psychopharmacol Bull 1984; 20: 328–38.Google Scholar
8 Dean, CE, Russell, JR, Kuskowski, MA, Caligiuri, MP, Nugent, SM. Clinical rating scales and instruments: how do they compare in assessing abnormal, involuntary movements? J Clin Psychopharmacol 2004; 24: 298304.CrossRefGoogle ScholarPubMed
9 Guy, W. ECDEU Assessment Manual for Psychopharmacology: Publication ADM 76–388. US Department of Health, Education, and Welfare, 1976.Google Scholar
10 Schooler, NR, Kane, JM. Research diagnoses for tardive dyskinesia (letter). Arch Gen Psychiatry 1995; 38: 336–9.Google Scholar
11 American Psychiatric Association. Diagnostic and Statistical Manual of Mental Disorders (4th edn) (DSM–IV). APA, 1994.Google Scholar
12 National Death Index. National Center for Health Statistics, 2002.Google Scholar
13 Abidi, S, Bhaskara, SM. From chlorpromazine to clozapine-antipsychotic adverse events and the clinician's dilemma. Can J Psychiatry 2003; 48: 749–55.CrossRefGoogle Scholar
14 Rosenheck, RA, Perlick, D, Bingham, S, Liu-Mares, W, Collins, J, Warren, S, et al. Effectiveness and costs of olanzapine and haloperidol in the treatment of schizophrenia. JAMA 2003; 290: 2693–702.Google Scholar
15 Lieberman, JA, Stroup, TS, McEvoy, JP. Effectiveness of antipsychotics drugs in patients with chronic schizophrenia. NEJM 2005; 353: 1209–23.Google Scholar
16 Wang, PS, Schneeweiss, S, Avorn, J, Fischer, MA, Mogun, H, Solomon, DH, et al. Risk of death in elderly uses of conventional antipsychotics vs atypical medications. N Engl J Med 2005; 353: 2335–41.Google Scholar
17 Enger, C, Weatherby, L, Reynolds, RF, Glasser, DB, Walker, AM. Serious cardiovascular events and mortality among patients with schizophrenia. J Nerv Ment Dis 2004; 192: 1927.Google Scholar
18 Hennessy, S, Bilker, WB, Knauss, JS. Cardiac arrest and ventricular arrhythmia in patients taking antipsychotic drugs: cohort study using administrative data. BMJ 2002; 325: 15.Google Scholar
19 Saha, S, Chant, D, McGrath, J. A systematic review of mortality in schizophrenia: is the mortality gap worsening over time? Arch Gen Psychiatry 2007; 64: 1123–31.Google Scholar
20 Brown, S. Excess mortality in schizophrenia. A meta-analysis. Br J Psychiatry 1997; 171: 502–8.CrossRefGoogle ScholarPubMed
21 Allebeck, P, Wisted, B. Mortality in schizophrenia: a ten-year follow-up based on the Stockholm County Inpatient Register. Arch Gen Psychiatry 1986; 43: 650–3.CrossRefGoogle ScholarPubMed
22 Laursen, TM, Munk-Olsen, T, Nordentoft, M, Mortensen, PB. Increased mortality among patients admitted with major psychiatric disorders: a register-based study comparing mortality in unipolar depressive disorder, bipolar affective disorder, schizoaffective disorder, and schizophrenia. J Clin Psychiatry 2007; 68: 899907.Google Scholar
23 Mortensen, PB, Juel, K. Mortality and causes of death in first admitted schizophrenic patients. Br J Psychiatry 1993; 163: 183–9.Google Scholar
24 Ösby, U, Correia, N, Ekbom, A, Brandt, L, Sparén, P. Time trends in schizophrenia mortality in Stockholm County, Sweden: cohort study. BMJ 2000; 321: 483–4.CrossRefGoogle ScholarPubMed
25 Harris, EC, Barraclough, B. Excess mortality of mental disorder. Br J Psychiatry 1998; 173: 1153.Google Scholar
26 Coulter, DM, Bate, A, Meyboom, RHB, Lindquist, M, Edwards, IR. Antipsychotic drugs in heart muscle disorder in international pharmacovigilance: data mining study. BMJ 2001; 322; 1207–9.CrossRefGoogle ScholarPubMed
27 Waddington, JL, Youseff, HA, Kinsella, A. Mortality in schizophrenia. Antipsychotic polypharmacy and absence of adjunctive anticholinergics over the course of a 10-year prospective study. Br J Psychiatry 1998; 173: 325–9.Google Scholar
28 Hippisley-Cox, J, Vinogradova, Y, Coupland, C, Parker, C. Risk of malignancy in patients with schizophrenia or bipolar disorder: nested case–control study. Arch Gen Psychiatry 2007; 64: 1368–76.CrossRefGoogle ScholarPubMed
29 Dean, CE. Antipsychotic-associated neuronal changes in the brain: toxic, therapeutic, or irrelevant to the long-term outcome in schizophrenia? Prog Neuropsychopharmacol Biol Psychiatry 2006; 30: 174–89.Google Scholar
Figure 0

Table 1 Characteristics of the sample

Figure 1

Table 2 Unadjusted predictors

Figure 2

Table 3 Final Cox proportional hazards regression model

Figure 3

Table 4 Causes of death and mortality rates per 100 000

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