| Literature DB >> 36069764 |
Vera Helen Buss1,2, Marlien Varnfield1, Mark Harris2, Margo Barr2.
Abstract
BACKGROUND: The digital transformation has the potential to change health care toward more consumers' involvement, for example, in the form of health-related apps which are already widely available through app stores. These could be useful in helping people understand their risk of chronic conditions and helping them to live more healthily.Entities:
Keywords: aging; cardiovascular; cardiovascular diseases; cohort studies; diabetes; diabetes mellitus type 2; digital health; mHealth; mobile app; mobile applications; mobile health; telemedicine
Mesh:
Year: 2022 PMID: 36069764 PMCID: PMC9494219 DOI: 10.2196/37343
Source DB: PubMed Journal: JMIR Mhealth Uhealth ISSN: 2291-5222 Impact factor: 4.947
Technology-related questions from the 45 and Up Study questionnaire 2019 that were used in the analysis.
| Question | Answer options |
| Do you use a computer or mobile device (eg, phone with a touch screen, tablet, or smart watch) regularly? | Yes/no |
| If YES, which of the following devices do you use regularly? Apple desktop or laptop computer (eg, iMac, MacBook)/Windows desktop or laptop computer/Apple tablet (iPad)/other tablet (eg, Samsung, Microsoft Surface, Lenovo)/Apple phone with a touch screen (iPhone)/Android phone with a touch screen (eg, Samsung, Huawei, Google)/other phone with a touch screen/Apple Watch/other smart watch/fitness tracker (eg, Fitbit, Garmin) | Yes/no/unsure |
| If you use applications (apps) on a mobile phone or tablet, how many have you ever downloaded yourself? (choose one only) | I don’t use apps/don’t know what apps are/none/1-5 /6 or more |
| How often do you use apps on your mobile phone or tablet to track the following: activity or fitness (eg, number of steps, exercise)/vital signs (eg, heart rate, blood pressure, breathing)/nutrition or weight/mood or well-being/sleep/medications (eg, reminders, alerts) | Never/less than once a month/at least once a month/at least once a week/every day |
Figure 1Flowchart of study participants. CVD: cardiovascular disease; mHealth: mobile health.
Proportion of missing values for each variable of interest (N=31,946).
| Variable | Missing, n (%) |
| Age | 0 (0) |
| Sex | 0 (0) |
| BMI | 1528 (4.78) |
| Smoking status | 282 (0.88) |
| Alcohol consumption | 697 (2.18) |
| Fruit and vegetable intake | 2447 (7.66) |
| Physical activity | 964 (2.96) |
| Income | 1303 (4.08) |
| Physical disability | 1745 (5.46) |
Demographic characteristics of all participants and various subgroups.
| Characteristics | Total sample | With CVDa or diabetes | At risk of CVD or T2DMb | Free of CVD and diabetes and not at risk | |||||
| Subgroup, n (% of total sample) | 31,946 (100) | 12,152 (38.04) | 16,422 (51.41) | 3372 (10.56) | |||||
| Age, median (IQR) | 69 (63-76) | 73 (67-79) | 67 (62-3) | 65 (61-71) | |||||
| Female, n (%) | 16,462 (51.53) | 5181 (42.63) | 9517 (57.95) | 1764 (52.31) | |||||
| Physical disability, n (%) | 14,963 (49.54) | 7598 (65.60) | 6433 (41.56) | 932 (29.68) | |||||
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| Normal | 10,677 (35.10) | 3302 (28.69) | 5558 (35.39) | 1817 (56.69) | ||||
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| Overweight | 11,851 (38.96) | 4475 (38.88) | 5988 (38.13) | 1388 (43.31) | ||||
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| Obese | 7890 (25.94) | 3733 (32.43) | 4157 (26.47) | 0 (0) | ||||
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| Never | 19,259 (60.82) | 6801 (56.55) | 10,288 (63.15) | 2170 (64.85) | ||||
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| Past | 11,508 (36.34) | 4924 (40.94) | 5528 (33.93) | 1056 (31.56) | ||||
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| Current | 897 (2.83) | 302 (2.51) | 475 (2.92) | 120 (3.59) | ||||
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| Alcohol | 24,971 (79.9) | 9621 (81.62) | 12,760 (79.02) | 2590 (78.13) | ||||
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| Fruits and vegetables | 7039 (23.9) | 2572 (23.26) | 3744 (24.40) | 723 (23.35) | ||||
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| Physical activity | 24,025 (77.5) | 8111 (69.26) | 13,159 (81.97) | 2755 (85.61) | ||||
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| Low | 6377 (20.8) | 3128 (27.16) | 2770 (17.44) | 479 (14.74) | ||||
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| Middle | 12,789 (41.7) | 4705 (40.86) | 6732 (42.40) | 1352 (41.61) | ||||
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| High | 6486 (21.2) | 1810 (15.72) | 3769 (23.74) | 907 (27.92) | ||||
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| Prefer not to say | 4991 (16.3) | 1872 (16.26) | 2608 (16.42) | 511 (15.73) | ||||
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| Laptop or computer | 22,610 (70.78) | 7891 (64.94) | 12,160 (74.05) | 2559 (75.89) | ||||
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| Tablet | 15,368 (48.11) | 5209 (42.87) | 8506 (51.80) | 1653 (49.02) | ||||
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| Smartphone | 24,256 (75.93) | 8198 (67.46) | 13,319 (81.10) | 2739 (81.23) | ||||
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| Fitness tracker | 3523 (11.03) | 1118 (9.20) | 1999 (12.17) | 406 (12.04) | ||||
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| Smart watch | 1506 (4.71) | 513 (4.22) | 811 (4.94) | 182 (5.40) | ||||
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| Any app | 26,434 (82.75) | 9468 (77.91) | 14,050 (85.56) | 2916 (86.48) | ||||
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| Downloading apps | 22,336 (69.92) | 7763 (63.88) | 12,042 (73.33) | 2540 (75.33) | ||||
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| Health apps | 9314 (29.16) | 3046 (25.07) | 5166 (31.46) | 1102 (32.68) | ||||
aCVD: cardiovascular disease.
bT2DM: type 2 diabetes mellitus.
Frequency of mHealth use (apps with health-related tracking features) overall and among the subgroups.
| Sample by frequency of tracking | Physical activity, n (%)a | Medication, n (%)a | Mood, n (%)a | Weight or diet, n (%)a | Sleep, n (%)a | Vital signs, n (%)a | |||
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| Never | 24,046 (75.27) | 30,552 (95.64) | 31,133 (97.46) | 29,344 (91.86) | 29,418 (92.09) | 24,631 (77.10) | ||
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| <1/month | 1314 (4.11) | 302 (0.95) | 389 (1.22) | 828 (2.59) | 485 (1.52) | 1254 (3.93) | ||
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| Monthly | 790 (2.47) | 217 (0.68) | 130 (0.41) | 460 (1.44) | 307 (0.96) | 731 (2.29) | ||
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| Weekly | 2,196 (6.87) | 247 (0.77) | 156 (0.49) | 716 (2.24) | 572 (1.79) | 1983 (6.21) | ||
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| Daily | 3,600 (11.27) | 628 (1.97) | 138 (0.43) | 598 (1.87) | 1,164 (3.64) | 3347 (10.48) | ||
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| Never | 9696 (79.80) | 11,480 (94.47) | 11,906 (97.98) | 11,297 (92.96) | 11,361 (93.49) | 9921 (81.64) | ||
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| <1/month | 404 (3.32) | 124 (1.02) | 105 (0.86) | 243 (2.00) | 132 (1.09) | 377 (3.10) | ||
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| Monthly | 240 (1.97) | 96 (0.79) | 45 (0.37) | 167 (1.37) | 91 (0.75) | 217 (1.79) | ||
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| Weekly | 679 (5.59) | 117 (0.96) | 47 (0.39) | 228 (1.87) | 183 (1.51) | 592 (4.87) | ||
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| Daily | 1,133 (9.32) | 335 (2.76) | 49 (0.40) | 217 (1.79) | 385 (3.17) | 1045 (8.60) | ||
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| Never | 11,955 (72.80) | 15,806 (96.25) | 15,949 (97.12) | 14,940 (90.98) | 14,966 (91.13) | 12,254 (74.62) | ||
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| <1/month | 739 (4.50) | 152 (0.93) | 236 (1.44) | 495 (3.01) | 294 (1.79) | 712 (4.34) | ||
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| Monthly | 459 (2.80) | 103 (0.63) | 68 (0.41) | 246 (1.50) | 182 (1.11) | 428 (2.61) | ||
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| Weekly | 1237 (7.53) | 106 (0.64) | 90 (0.55) | 411 (2.50) | 313 (1.91) | 1135 (6.91) | ||
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| Daily | 2032 (12.37) | 255 (1.55) | 79 (0.48) | 330 (2.01) | 667 (4.06) | 1893 (11.53) | ||
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| Never | 2395 (71.03) | 3266 (96.86) | 3278 (97.21) | 3107 (92.14) | 3091 (91.67) | 2456 (72.84) | ||
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| <1/month | 171 (5.07) | 26 (0.77) | 48 (1.42) | 90 (2.67) | 59 (1.75) | 165 (4.89) | ||
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| Monthly | 91 (2.70) | 18 (0.53) | 17 (0.50) | 47 (1.39) | 34 (1.01) | 86 (2.55) | ||
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| Weekly | 280 (8.30) | 24 (0.71) | 19 (0.56) | 77 (2.28) | 76 (2.25) | 256 (7.59) | ||
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| Daily | 435 (12.90) | 38 (1.13) | 10 (0.30) | 51 (1.51) | 112 (3.32) | 409 (12.13) | ||
aPercentages may not total 100% due to rounding.
bCVD: cardiovascular disease.
cT2DM: type 2 diabetes mellitus.
Differences between participants at risk of CVD and/or T2DM who use mHealth and who do not.
| Characteristics | At risk of CVDa or T2DMb |
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| mHealthc users, n (%)d | Nonusers, n (%)d | Chi-square ( | |||||||
| Sample size | 5166 (31.46) | 11,256 (68.54) | N/Af | N/A | |||||
| Age, median (IQR) g | 64 (60-69) | 69 (63-75) | N/A | .47 | |||||
| Female | 3177 (61.50) | 6340 (56.33) | 38.7 (1) | <.001 | |||||
| Hypertension | 2199 (42.57) | 5355 (47.57) | 35.5 (1) | <.001 | |||||
| Dyslipidemia | 1539 (29.79) | 3462 (30.76) | 1.5 (1) | .22 | |||||
| Gestational diabetes, n (% of women) | 46 (1.45) | 56 (0.88) | 5.8 (1) | .02 | |||||
| Family history of CVD | 3564 (68.99) | 7488 (66.52) | 9.7 (1) | .002 | |||||
| Family history of diabetes | 1421 (27.51) | 2653 (23.57) | 29.2 (1) | <.001 | |||||
| Physical disability | 1611 (32.80) | 4822 (45.63) | 226.5 (1) | <.001 | |||||
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| 9.8 (2) | .01 | |||||||
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| Normal | 1690 (33.73) | 3868 (36.18) |
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| Overweight | 1981 (39.53) | 4007 (37.48) |
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| Obese | 1340 (26.74) | 2817 (26.35) |
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| 38.4 (2) | <.001 | |||||||
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| Never | 3225 (62.71) | 7063 (63.36) |
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| Past | 1826 (35.50) | 3702 (33.21) |
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| Current | 92 (1.79) | 383 (3.44) |
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| Alcohol | 4058 (79.29) | 8702 (78.90) | 0.3 (1) | .59 | ||||
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| Fruits and vegetables | 1225 (24.85) | 2519 (24.18) | 0.8 (1) | .38 | ||||
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| Physical activity | 4505 (88.59) | 8654 (78.90) | 220.2 (1) | <.001 | ||||
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| 626.4 (3) | <.001 | |||||||
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| Low | 500 (9.89) | 2270 (20.98) |
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| Middle | 2,034 (40.22) | 4698 (43.41) |
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| High | 1750 (34.61) | 2019 (18.66) |
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| Prefer not to say | 773 (15.29) | 1835 (16.96) |
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| Laptop or computer | 4394 (85.06) | 7766 (68.99) | 474.5 (1) | <.001 | ||||
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| Tablet | 3510 (67.94) | 4996 (44.39) | 786.2 (1) | <.001 | ||||
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| Smartphone | 4982 (96.44) | 8337 (74.07) | 1154.9 (1) | <.001 | ||||
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| Fitness tracker | 1694 (32.79) | 305 (2.71) | 2994.3 (1) | <.001 | ||||
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| Smart watch | 686 (13.28) | 125 (1.11) | 1114.3 (1) | <.001 | ||||
aCVD: cardiovascular disease.
bT2DM: type 2 diabetes mellitus.
cmHealth: mobile health.
dAge is presented as median (IQR).
eFor age: Wilcoxon rank-sum test with continuity correction; for all other variables: Pearson chi-square test with Yates continuity correction.
fN/A: not applicable.
gW=3.
Figure 2Forest plot with adjusted odds ratios for using mHealth in the entire cohort. mHealth: mobile health.
Figure 3Forest plot with adjusted odds ratios for using mHealth in those at risk of cardiovascular disease or type 2 diabetes mellitus. mHealth: mobile health.