首页> 外文期刊>Tobacco Use Insights >Predictors of Smoking Cessation in a Lifestyle-Focused Text-Message Support Programme Delivered to People with Coronary Heart Disease: An Analysis From the Tobacco Exercise and Diet Messages (TEXTME) Randomised Clinical Trial
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Predictors of Smoking Cessation in a Lifestyle-Focused Text-Message Support Programme Delivered to People with Coronary Heart Disease: An Analysis From the Tobacco Exercise and Diet Messages (TEXTME) Randomised Clinical Trial

机译:在冠心病的生活方式的专注文本留言支持程序中停止吸烟的预测因素:烟草运动和饮食信息(Textme)随机临床试验的分析

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BACKGROUND: Studies have demonstrated the effectiveness of text message-based prevention programs on smoking cessation, including our recently published TEXTME randomised controlled trial. However, little is known about the predictors of smoking cessation in this context and if other clinically important factors interact with the program to lead to quitting. Hence, the objective of this study was to first assess the predictors of smoking cessation in TEXTME and then determine if the effect of texting on quitting was modified by interactions with important clinical variables. This will allow us to better understand how text messaging works and thus help optimise future text-message based prevention programs. METHODS: This sub-analysis used data collected as part of the TEXTME trial which recruited 710 participants (377 current smokers at baseline) between September 2011 and November 2013 from a large tertiary hospital in Sydney, Australia. Smokers at baseline were analysed at 6 months and grouped into those who quit and those who did not. Univariate analyses were performed to determine associations between the main outcome and clinically important baseline factors selected a priori. A multiple binominal logistic regression analysis was conducted to develop a predictive model for the dependent variable smoking cessation. A test of interaction between the intervention group and baseline variables selected a priori with the outcome smoking cessation was performed. RESULTS: Univariate analysis identified receiving text-messages, age, and mean number of cigarettes smoked each day as being associated with quitting smoking. After adjusting for age, receiving the text-messaging program (OR 2.34; 95%CI 1.43-3.86; p0.01) and mean number of cigarettes smoked per day (OR 1.02; 95%CI 1.00-1.04; p=0.03) were independent predictors for smoking cessation. LDL-C showed a significant interaction effect with the intervention (High LDL*Intervention OR 3.77 (95%CI 2.05-6.94); Low LDL*Intervention OR 1.42 (95%CI 0.77-2.60); P=0.03). CONCLUSIONS: Smoking quantity at baseline is independently associated with smoking cessation and higher LDL-C may interact with the intervention to result in quitting smoking. Those who have a higher baseline risk maybe more motivated towards beneficial lifestyle change including quitting smoking, and thus more likely to respond to mHealth smoking cessation programs. The effect of text-messages on smoking cessation was independent of age, gender, psychosocial parameters, education, and baseline control of risk factors in a secondary prevention cohort.
机译:背景:研究表明了文本基于留言的预防计划在吸烟停止的有效性,包括我们最近发表的Textme随机对照试验。然而,在这种情况下,关于吸烟停止的预测因子,如果其他临床上重要因素与该计划相互作用,则知之甚少,以导致戒烟。因此,本研究的目的是首先评估典型中吸烟停止的预测因子,然后通过与重要临床变量的相互作用来确定发短信对戒烟的影响。这将使我们能够更好地了解文本消息的工作原理,从而有助于优化基于未来的文本消息的预防程序。方法:该子分析使用作为Textme试验的一部分,该数据由2011年9月至2011年9月至2013年11月在澳大利亚悉尼的一家大型高等教育医院招募了710名参与者(377个当前吸烟者)。基线的吸烟者在6个月内分析并分组到那些戒烟和那些没有的人。执行单变量分析以确定主要结果与临床重要基线因素之间的关联。进行了多元逻辑物流回归分析,为依赖变量吸烟停止制定了一种预测模型。进行了干预组和基线变量之间的相互作用的测试,并进行了结果吸烟的先验。结果:单变量分析确定了接受每天吸烟的短信,年龄和平均卷烟的平均数量,因为与戒烟有关。调整年龄后,接收文本消息程序(或2.34; 95%CI 1.43-3.86; P <0.01),每天吸烟的平均数量(或1.02; 95%CI 1.00-1.04; P = 0.03)吸烟的独立预测因子。 LDL-C表现出与干预的相互作用效果(高LDL *干预或3.77(95%CI 2.05-6.94);低LDL *干预或1.42(95%CI 0.77-2.60); P = 0.03)。结论:基线的吸烟量独立相关,吸烟停止和较高的LDL-C可以与干预互动以导致戒烟。那些具有更高的基线风险的人可能更有促进受益生活方式的变化,包括戒烟,因此更有可能回应MHEALTE吸烟戒烟计划。文本信息对吸烟停止的影响与年龄,性别,心理社会参数,教育和危险因素的基线控制无关,在二级预防队列中的风险因素。

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