Introduction
Attention-deficit/hyperactivity disorder (ADHD) is one of the most common neurodevelopmental disorders of childhood, with an estimated worldwide prevalence of 7.2% in children ≤18 years (1). According to the Diagnostic and Statistical Manual of Mental Disorders, Fifth Edition (DSM-5), ADHD is characterized by the core symptoms of inattention, hyperactivity and impulsivity that negatively impact social and academic/occupational functioning (2). The International Statistical Classification of Diseases and Related Health Problems, Tenth Revision (ICD-10) refers to ADHD as Hyperkinetic Disorder and provides generally similar but stricter criteria for the diagnosis of the disorder (3).
Current practice guidelines recommend a comprehensive multimodal treatment approach for the management of ADHD (4-7). Stimulants, including methylphenidate (MPH) and amphetamines (AMP), are the most commonly used pharmacological treatment. Numerous randomized controlled trials (RCTs) and meta-analyses have demonstrated the efficacy and safety of stimulants for the treatment of ADHD in children and adolescents (8-12).
The exact mechanism of action of stimulants in humans with ADHD is not fully known, however, it is thought that both MPH and AMP increase levels of extracellular dopamine (DA) and norepinephrine (NE) in the synaptic cleft and thereby enhance noradrenergic and dopaminergic neurotransmission in the central nervous system (13). Both MPH and AMP inhibit the dopamine transporter (DAT) and norepinephrine transporter (NET) (14), resulting in increased extracellular DA and NE levels (13). In contrast to MPH, AMP also promotes the release of DA from the presynaptic neuron into the synaptic cleft (Supplementary Figure S1) (13, 15-17).
Various amphetamine products are currently marketed for the treatment of ADHD, including oral immediate-release and extended-release formulations containing different AMP salts and stereoisomers (18). Attentin/Amfexa/Tentin® is an immediate-release tablet formulation of dexamphetamine sulfate that is available at doses of 5 mg, 10 mg and 20 mg (19). The product was first authorized in Germany in 2011 and has subsequently been approved in several further countries (Supplementary Table S1). For simplicity, the following sections refer to the product as Attentin®.
Attentin® is indicated as part of a comprehensive treatment program for ADHD in children and adolescents aged 6 to 17 years when response to previous methylphenidate treatment is considered clinically inadequate. A comprehensive treatment program typically includes psychological, educational and social measures. Diagnosis should be made according to DSM-5 criteria or the guidelines in ICD-10 and should be based on a comprehensive multidisciplinary evaluation of the patient. DEX is not indicated in all children with ADHD and the decision to use DEX must be based on a very thorough assessment of the severity and chronicity of the child’s symptoms in relation to the child’s age and potential for abuse, misuse or diversion. Treatment should be under the supervision of a specialist in childhood and/or adolescent behavioral disorders (19).
Careful dose titration is necessary at the start of treatment with DEX. Dose titration should be started at the lowest possible dose. The recommended starting daily dose is 5 mg once or twice daily (e.g. at breakfast and lunch), increasing if necessary by weekly increments of 5 mg in the daily dose according to tolerability and degree of efficacy observed. The regimen that achieves satisfactory symptom control with the lowest total daily dose should be employed. The maximum daily dose in children and adolescents usually is 20 mg, although doses of 40 mg may in rare cases be necessary for optimum titration (an overview of the dosing recommendations is given in Supplementary Figure S2) (19).
The pharmacokinetic properties of Attentin® tablets were assessed in 18 healthy adults. Following the administration of one 5 mg tablet, average maximal plasma concentrations (Cmax) of 11.5 ng/mL were achieved at a mean ± SD tmax of 1.5 ± 0.4 hours (Supplementary Figure S3) (19).
Several studies have demonstrated the superiority of DEX over placebo in improving core symptoms and functional outcomes in pediatric patients with ADHD. DEX was also shown to have equivalent efficacy compared to other stimulants (20-26). A network meta-analysis that assessed the comparative efficacy and tolerability of oral ADHD medications supports MPH in children and adolescents, and amphetamines in adults, as first-choice medications for short-term ADHD treatment (27). A review of response data from studies directly comparing MPH- and AMP-based stimulants found that 71% of patients responded to MPH, 68% responded to AMP, and 91% responded to either type of stimulant (28). These data indicate that, although the response rates to MPH and AMP are similar in the overall population, individual response to either class of stimulant may vary, i.e. some individuals respond better to MPH and some respond better to AMP. Thus, if an ADHD patient does not respond to or does not tolerate one type of stimulant, the other type of stimulant should be tried.
The safety profiles of different stimulant classes and formulations are generally comparable (18). A recent Cochrane review found that the most common adverse events (AEs) reported in RCTs of pediatric ADHD patients treated with AMP products included decreased appetite, insomnia/trouble sleeping, abdominal pain, nausea/vomiting, headaches, and anxiety (9). Most AEs are mild and/or temporary and can be managed by the clinician through dose and timing adjustments (29). In most cases, medication discontinuation is not necessary (30). Serious side effects are rare and disappear when the dose is reduced or treatment is discontinued (29).
RCTs are considered the gold standard of evidence-based medicine, providing the highest level of evidence on clinical efficacy and safety of therapeutic interventions. However, most RCTs have strict inclusion criteria, meaning that the trial populations are highly homogeneous and often not representative of the prevailing patient population in a real-world community-based setting. Real-world studies can complement the results from RCTs by providing data on the treatment effectiveness in heterogeneous patient populations encountered in routine clinical practice (31).
The non-interventional study (NIS) ATTENTION (Attentin® in children and adolescents with ADHD – a non-interventional study) investigated the real-world effectiveness and safety of Attentin® in children and adolescents with ADHD.
Methods
Objective
The objective of the study was to investigate the long-term effectiveness and safety of DEX treatment in children and adolescents with ADHD under daily routine conditions.
Participants
The study included children/adolescents between 6 and 17 years with a confirmed ADHD diagnosis (according to DSM-IV/5 or ICD-10) who had a clinically inadequate response to previous MPH treatment. The indication for DEX treatment was at the discretion of the treating physician. Patients with contraindications to Attentin® were excluded. All patients/caregivers provided written informed consent to participate.
Study design
This was a multicenter, prospective, observational, non-interventional study (ClinicalTrials.gov Identifier: NCT02801604). The necessary ethics approvals were obtained before study start. The study was conducted between June 2016 and April 2019. Overall, 40 study centers (37 in Germany and one each in Denmark, Norway and Sweden) participated in the study; all participating sites were specialized in childhood and/or adolescent behavioral disorders. The study consisted of a baseline visit (baseline examinations and retrospective assessment of efficacy and safety of previous ADHD medications; V1), a titration phase to determine the optimal dose of DEX, and a maintenance phase that included two follow-up visits after approx. 6 months (V2) and 12 months (V3) of DEX treatment. All decisions regarding treatment of patients (e.g. initial dose, titration scheme, follow-up) were at the sole discretion of the treating physician. The study protocol recommended that Attentin® be given according to the approved label in each country.
Outcome measures
The primary efficacy variable was the ADHD rating scale IV (ADHD-RS-IV), a validated instrument for assessing the severity of ADHD symptoms in children and adolescents. The ADHD-RS-IV is an 18-item scale based on the ADHD symptoms described in the DSM-IV. Each item is rated on a 4-point Likert scale ranging from 0 (none) to 3 (severe) (32). The primary endpoint was defined as the investigator-rated ADHD-RS-IV total score change from V1 to V2.
Secondary endpoints included ADHD-RS-IV total score changes from V1 to titration and from V1 to V3, as well as changes from V1 in ADHD-RS-IV subscales. Further secondary endpoints included subgroup analyses of the primary endpoint stratified by gender, total daily DEX dose and baseline ADHD-RS-IV total score. Additionally, the primary and all secondary endpoints were stratified by age group (children and adolescents). The DEX dose as well as the onset of action and duration of action of DEX were also assessed. The overall burden of impairments in daily functioning on the parents or family was assessed using a 4-point Likert question ranging from 0 (not at all) to 3 (a great deal). Compliance to treatment was estimated using a 5-point Likert question (1 = 100% compliance, 2 = ≥90%, 3 = ≥75% and <90%, 4 = ≥50% and <75%, 5 = <50%).
Safety
Adverse drug reactions (ADRs) were recorded by the physician at each study visit. The safety of the last ADHD medication was retrospectively assessed at the baseline visit (ADRs in the previous 6 months before initiation of DEX). Weight, height, blood pressure and heart rate were assessed at each study visit. Any signs of drug abuse, drug dependency, misuse, incorrect use or off-label use were to be documented.
Statistical analysis
All clinical data were captured in electronic case report forms (Clincase, Quadratek Data Solutions Ltd, Berlin, Germany). The software complied with Good Clinical Practice (GCP) and international standards for capturing study data.
All enrolled patients were included in the statistical analysis. For the calculation of ADHD-RS-IV total/subscale scores and the response rate, only complete cases were used (no imputation of missing values). Responders were defined as patients with a relative reduction in the ADHD-RS-IV total score from V1 to V2 of at least 0.3 (i.e. 30%).
Differences in ADHD-RS-IV total scores were assessed using a two-sided paired t-test. The correlation between total daily dose and age or weight was analyzed using Pearson’s correlation coefficient (r). All analyses were performed using SAS 9.4 (SAS Institute Inc., Cary, NC, USA) and R 4.0.2 (R Foundation for Statistical Computing, Vienna, Austria) with the R-package haven (33, 34).
Body mass index (BMI) z-scores were calculated based on the WHO growth reference data for 5 to 19 years of age (2007) using AnthroPlus software (www.who.int/growthref/en).
Results
Participants
A total of 140 patients were enrolled in the study and included in the statistical analyses. Most of the patients were included in Germany (N=133, 95.0%); four (2.9%) patients were included in Denmark, two (1.4%) in Norway and one (0.7%) in Sweden.
Demographic and other baseline characteristics
All enrolled patients attended V1, 138 (98.6%) patients attended the titration visits, 98 (70%) patients attended V2 and 89 (63.6%) patients attended V3. The most common reasons for discontinuing DEX treatment included noncompliance of the patients (n=12, 8.6%), insufficient efficacy, and ADRs (n=10; 7.1% each). Demographic and other baseline characteristics of the study population are described in Table 1.
TABLE 1.
Baseline demographics and disease characteristics
| Characteristic | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Age (years) | ||||||||||||
| Mean ± SD | 11.2 ± 3.1 | |||||||||||
| Median (minimum, maximum) | 11.0 (6, 17) | |||||||||||
| Age group, n (%) | ||||||||||||
| Children (<12 years) | 82 (58.6) | |||||||||||
| Adolescents (≥12 years) | 58 (41.4) | |||||||||||
| Race, n (%) | ||||||||||||
| White | 140 (100.0) | |||||||||||
| Sex, n (%) | ||||||||||||
| Male | 100 (71.4) | |||||||||||
| Female | 40 (28.6) | |||||||||||
| Time since ADHD diagnosis (months), median (IQR) (N=138) | 22.0 (44.5) | |||||||||||
| ADHD diagnosis according to | ||||||||||||
| ICD-10 | 138 (98.6) | |||||||||||
| DSM-5 | 1 (0.7) | |||||||||||
| DSM-IV | 1 (0.7) | |||||||||||
| ADHD diagnosis according to ICD-10, n (%) | ||||||||||||
| F90.0: disturbance of activity and attention | 97 (69.3) | |||||||||||
| F90.1: hyperkinetic conduct disorder | 38 (27.1) | |||||||||||
| F90.9: hyperkinetic disorder, unspecified | 3 (2.1) | |||||||||||
| ADHD diagnosis according to DSM-5, n (%) | ||||||||||||
| 314.01: combined presentation | 1 (0.7) | |||||||||||
| ADHD diagnosis according to DSM-IV, n (%) | ||||||||||||
| 314.01: predominantly hyperactive/impulsive type | 1 (0.7) | |||||||||||
| Additional conduct disorder, n (%) | 61 (43.6) | |||||||||||
| Concomitant diseases, n (%) (n≥3) | ||||||||||||
| All | 53 (37.9) | |||||||||||
| Autism spectrum disorder | 9 (6.4) | |||||||||||
| Disturbance in social behavior | 7 (5.0) | |||||||||||
| Depression | 5 (3.6) | |||||||||||
| Enuresis | 4 (2.9) | |||||||||||
| Sleep disorder | 4 (2.9) | |||||||||||
| Tic | 3 (2.1) | |||||||||||
| Previous MPH treatment | ||||||||||||
| Number of MPH therapies, n (%) (N=137) | ||||||||||||
| 1 | 118 (86.1) | |||||||||||
| 2 | 15 (11.0) | |||||||||||
| 3 | 3 (2.2) | |||||||||||
| 5 | 1 (0.7) | |||||||||||
| Number of single doses per day, mean ± SD (N=137) | 1.4 ± 0.5 | |||||||||||
| Immediate-release (N=33) | 1.5 ± 0.6 | |||||||||||
| Extended-release (N=114) | 1.4 ± 0.5 | |||||||||||
| Total daily MPH dose (mg), mean ± SD (N=137) | 27.5 ± 14.1 | |||||||||||
| Immediate-release (N=33) | 20.7 ± 12.2 | |||||||||||
| Extended-release (N=114) | 28.9 ± 14.0 | |||||||||||
| DEX treatment | ||||||||||||
| Total daily dose at the respective visit (mg), median (IQR) | ||||||||||||
| First titration visit (initial dose) (N=138) | 5.0 (5.0) | |||||||||||
| Children (<12 years) (N=80) | 5.0 (5.0) | |||||||||||
| Adolescents (≥12 years) (N=58) | 5.0 (5.0) | |||||||||||
| Titration (last recorded dose) (N=138) | 11.3 (10.0) | |||||||||||
| Children (<12 years) (N=80) | 10.0 (10.6) | |||||||||||
| Adolescents (≥12 years) (N=58) | 15.0 (10.0) | |||||||||||
| V2 (N=95) | 12.5 (10.0) | |||||||||||
| Children (<12 years) (N=57) | 10.0 (10.0) | |||||||||||
| Adolescents (≥12 years) (N=38) | 15.0 (10.0) | |||||||||||
| V3 (N=82) | 15.0 (10.0) | |||||||||||
| Children (<12 years) (N=53) | 12.5 (10.0) | |||||||||||
| Adolescents (≥12 years) (N=29) | 20.0 (10.0) | |||||||||||
| Optimal total daily dose (mg), median (IQR) (N=120) | 10.0 (10.0) | |||||||||||
| Children (<12 years) (N=69) | 10.0 (10.0) | |||||||||||
| Adolescents (≥12 years) (N=51) | 15.0 (10.0) | |||||||||||
| Optimal total daily dose per body weight (mg/kg), median (IQR) (N=120) | 0.3 (0.3) | |||||||||||
| Children (<12 years) (N=69) | 0.4 (0.3) | |||||||||||
| Adolescents (≥12 years) (N=51) | 0.3 (0.2) | |||||||||||
| Number of titration steps to optimal total daily dose, n (%) (N=140) | ||||||||||||
| 1 | 16 (11.4) | |||||||||||
| 2 | 46 (32.9) | |||||||||||
| 3 | 24 (17.1) | |||||||||||
| 4 | 22 (15.7) | |||||||||||
| 5 | 4 (2.9) | |||||||||||
| 6 | 7 (5.0) | |||||||||||
| 10 | 1 (0.7) | |||||||||||
| Optimal total daily dose not achieved | 18 (12.9) | |||||||||||
| No titration performed | 2 (1.4) | |||||||||||
| Dose regimen, n (%) (N=129) | ||||||||||||
| Once daily | 76 (58.9) | |||||||||||
| Twice daily | 50 (38.8) | |||||||||||
| Three times daily | 2 (1.6) | |||||||||||
| Four times daily | 1 (0.8) | |||||||||||
| Subgroup | V1 (previous MPH treatment) | Δ V2 – V1 | Δ V3 – V1 | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| N | Mean ± SD | N | Mean ± SD | p | N | Mean ± SD | p | |||||
| Total population | ||||||||||||
| ADHD-RS-IV total score | 136 | 27.1 ± 11.7 | 96 | -11.9 ± 10.8 | < .001 | 85 | -12.7 ± 10.9 | < .001 | ||||
| ADHD-RS-IV subscale hyperactivity/impulsivity | 136 | 11.1 ± 7.3 | 96 | -5.0 ± 6.1 | < .001 | 85 | -5.7 ± 5.8 | < .001 | ||||
| ADHD-RS-IV subscale inattention | 136 | 16.0 ± 5.4 | 97 | -6.8 ± 5.6 | < .001 | 85 | -7.1 ± 5.9 | < .001 | ||||
| Subgroup analysis according to age group | ||||||||||||
| ADHD-RS-IV total score | ||||||||||||
| Children | 80 | 27.7 ± 12.9 | 58 | -11.7 ± 11.7 | < .001 | 54 | -12.8 ± 11.3 | < .001 | ||||
| Adolescents | 56 | 26.2 ± 9.8 | 38 | -12.1 ± 9.3 | < .001 | 31 | -12.5 ± 10.3 | < .001 | ||||
| ADHD-RS-IV subscale hyperactivity/impulsivity | ||||||||||||
| Children | 80 | 11.8 ± 8.2 | 58 | -5.0 ± 6.8 | < .001 | 54 | -6.0 ± 6.0 | < .001 | ||||
| Adolescents | 56 | 10.0 ± 5.6 | 38 | -5.1 ± 4.9 | < .001 | 31 | -5.1 ± 5.4 | < .001 | ||||
| ADHD-RS-IV subscale inattention | ||||||||||||
| Children | 80 | 15.9 ± 5.7 | 59 | -6.7 ± 5.6 | < .001 | 54 | -6.9 ± 6.0 | < .001 | ||||
| Adolescents | 56 | 16.1 ± 5.1 | 38 | -7.0 ± 5.6 | < .001 | 31 | -7.4 ± 5.9 | < .001 | ||||
| Subgroup | V1 (previous MPH treatment) | Δ V2 – V1 | Δ V3 – V1 | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| N | ADHD-RS-IV total score (mean ± SD) | N | ADHD-RS-IV total score (mean ± SD) | p | N | ADHD-RS-IV total score (mean ± SD) | p | |||||
| Gender | ||||||||||||
| Male | 98 | 27.6 ± 12.1 | 69 | -12.8 ± 11.2 | < .001 | 64 | -13.3 ± 10.9 | < .001 | ||||
| Female | 38 | 25.8 ± 10.8 | 27 | -9.4 ± 9.3 | < .001 | 21 | -11.1 ± 10.8 | < .001 | ||||
| Maximum total daily DEX dose (mg/d) | ||||||||||||
| ≤10 | 62 | 28.4 ± 10.8 | 46 | -13.0 ± 11.0 | < .001 | 40 | -14.7 ± 11.2 | < .001 | ||||
| >10 to ≤20 | 51 | 28.2 ± 12.9 | 34 | -10.4 ± 12.3 | < .001 | 28 | -11.3 ± 11.5 | < .001 | ||||
| >20 | 22 | 20.4 ± 9.8 | 16 | -11.7 ± 4.7 | < .001 | 17 | -10.5 ± 8.5 | < .001 | ||||
| Baseline ADHD-RS-IV total score | ||||||||||||
| ≤20 | 45 | 13.4 ± 3.0 | 40 | -4.5 ± 8.7 | .002 | 36 | -5.1 ± 7.0 | < .001 | ||||
| >20 to ≤40 | 71 | 30.5 ± 5.1 | 41 | -15.0 ± 7.9 | < .001 | 37 | -16.6 ± 9.3 | < .001 | ||||
| >40 | 20 | 45.7 ± 3.9 | 15 | -22.8 ± 9.1 | < .001 | 12 | -23.8 ± 9.4 | < .001 | ||||
| V1 | V2 | V3 | Δ V2 – V1 | Δ V3 – V1 | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| N | Mean ± SD | N | Mean ± SD | N | Mean ± SD | N | Mean ± SD | p | N | Mean ± SD | p | |
| Height [cm] | 140 | 147.7 ± 18.9 | 96 | 149.3 ± 17.1 | 86 | 151.8 ± 16.6 | 96 | 2.1 ± 2.1 | < .001 | 86 | 5.7 ± 2.9 | < .001 |
| Weight [kg] | 140 | 42.7 ± 17.7 | 97 | 41.6 ± 15.6 | 87 | 43.4 ± 15.7 | 97 | 1.2 ± 2.7 | < .001 | 87 | 3.6 ± 3.7 | < .001 |
| BMI z-score | 140 | 0.20 ± 1.20 | 96 | -0.12 ± 1.08 | 86 | -0.10 ± 1.11 | 96 | -0.18 ± 0.49 | < .001 | 86 | -0.16 ± 0.63 | 0.018 |
| Systolic blood pressure [mmHg] | 140 | 112.1 ± 12.0 | 98 | 113.5 ± 11.9 | 87 | 114.3 ± 12.4 | 98 | 2.4 ± 9.6 | 0.017 | 87 | 3.8 ± 9.1 | < .001 |
| Diastolic blood pressure [mmHg] | 140 | 71.5 ± 8.6 | 98 | 73.3 ± 8.4 | 87 | 74.7 ± 8.5 | 98 | 2.2 ± 8.8 | 0.016 | 87 | 3.8 ± 9.0 | < .001 |
| Heart rate [beats/min] | 140 | 79.9 ± 13.7 | 98 | 78.4 ± 12.0 | 87 | 80.1 ± 13.1 | 98 | 0.01 ± 9.5 | ns | 87 | 0.64 ± 13.0 | ns |

