scholarly journals PMH38 SOCIETAL COSTS OF OPIOID ABUSE, DEPENDENCE, AND MISUSE IN THE UNITED STATES

2010 ◽  
Vol 13 (3) ◽  
pp. A111 ◽  
Author(s):  
H Birnbaum ◽  
A White ◽  
M Schiller ◽  
T Waldman ◽  
JM Cleveland ◽  
...  
Pain Medicine ◽  
2011 ◽  
Vol 12 (4) ◽  
pp. 657-667 ◽  
Author(s):  
Howard G. Birnbaum ◽  
Alan G. White ◽  
Matt Schiller ◽  
Tracy Waldman ◽  
Jody M. Cleveland ◽  
...  

2020 ◽  
Author(s):  
Haya Jarad ◽  
Junhua Yang ◽  
Abeed Sarker

BACKGROUND Opioid misuse is a major health problem in the United States, and can lead to addiction and fatal overdose. The United States is in the midst of an opioid epidemic; in 2018, an average of approximately 130 Americans died daily from an opioid overdose and 2.1 million have an opioid use disorder (OUD). In addition to electronic health records (EHRs), social media have also been harnessed for studying and predicting physical and behavioral outcomes of OUD. Specifically, it has been shown that on Twitter the use of certain language patterns and their frequencies in subjects’ tweets are indicative of significant healthcare outcomes such as opioid misuse/use and suicide ideation. We sought to understand personal traits and behaviors of Twitter chatters relative to the motive of opioid misuse; pain or recreational. OBJECTIVE . METHODS We collected tweets using the Twitter public developer application programming interface (API) between April 13, 2018 – and May 21, 2018. A list of opioid-related keywords were searched for such as methadone, codeine, fentanyl, hydrocodone, vicodin, heroin and oxycodone. We manually annotated tweets into three classes: no-opioid misuse, pain-misuse and recreational-misuse, the latter two representing misuse for pain or recreation/addiction. We computed the coding agreement between the two annotators using the Cohen’s Kappa statistic. We applied the Linguistic Inquiry and Word Count (LIWC) tool on historical tweets, with at least 500 words, of users in the dataset to analyze their language use and learn about their personality raits and behaviors. LIWC is a text processing software that analyzes text narratives and produces approximately 90 variables scored based on word use that pertain to phsycological, emotional, behavioral, and linguistic processes. A multiclass logistic regression model with backward selection based on the BIC criterion was used to identify variables associated with pain and recreational opioid misuse compared to the base class; no-opioid misuse.. The goal was to understand whether personal traits or behaviors differ across different classes. We reported the odd ratios of different variables in both pain and recreational related opioid misuse classes with respect to the no-opioid misuse class. RESULTS The manual annotation resulted in a total of 1,164 opioid related tweets. 229 tweets were assigned to the pain-related class, 769 were in the recreational class, and 166 tweets were tagged with no opioid misuse class. The overall inter-annotator agreement (IAA) was 0.79. Running LIWC on the tweets resulted in 55 variables. We selected the best model based on BIC. We examined the variables with the highest odd ratios to determine those associated with both pain and recreational opioid misuse as compared to the base class. Certain traits such as depression, stress, and melancholy are established in the literature as commonplace amongst opiod abuse indiviuals. In our analysis, these same characteristics, amongst others, were identified as significantly positively associated with both the Pain and Recreational groups compared to the no-opioid misuse group. Despite the different motivaions for opiod abuse, both groups present the same core personality traits. Interestingly, individuals who misuse opioids as a pain management tool exhibited higher odds ratios for psychological processees and personal traits based on their tweet language. These include a strong focus on discipline, as demonstrated by the variables “disciplined”, “cautious” and “work_oriented”. Their tweet language is also indicative of cheerfulness, a variable absent in the recreational misuse group. Variables associated with the reacreational misuse group revolve around external factors. They are generous and motivated by reward, while maintaining a religious orientation. Based on their tweet language, this group is also characterized as “active”; we understand that these individuals are more social and community focused . CONCLUSIONS To our best knowledge, this is the first study to investigate motivations of opioid abuse as it relates to tweet language. Previous studies utilizing Twitter data were limited to simply detecting opiod abuse likelihood through tweets. By delving deeper into the classes of opioid abuse and its motivation, we offer greater insight into opioid abuse behavior. This insight extends beyond simple identification, and explores patterns in motivation. We conclude that user language on Twitter is indicative of significant differences in personal traits and behaviors depending on abuse motivation: pain management or recreation.


2020 ◽  
Vol 26 (10) ◽  
pp. 1188-1198
Author(s):  
ALAN G. WHITE ◽  
HOWARD G. BIRNBAUM ◽  
MILENA N. MAREVA ◽  
MAHAM DAHER ◽  
SUSAN VALLOW ◽  
...  

2015 ◽  
Vol 146 ◽  
pp. e129-e130
Author(s):  
Traci Green ◽  
Sarah Bowman ◽  
Cristina Los ◽  
Kimberly McHugh ◽  
Peter Friedmann

2017 ◽  
Vol 82 (4) ◽  
pp. 562-563 ◽  
Author(s):  
Veerajalandhar Allareddy ◽  
Sankeerth Rampa ◽  
Veerasathpurush Allareddy

Pain Medicine ◽  
2014 ◽  
Vol 15 (12) ◽  
pp. 2064-2074 ◽  
Author(s):  
Jeffrey Vietri ◽  
Ashish V. Joshi ◽  
Alexandra I. Barsdorf ◽  
Jack Mardekian

2021 ◽  
Vol 31 (Supplement_3) ◽  
Author(s):  
F Balidemaj

Abstract Background The opioid epidemic in the United States is a national public health crisis. Driven by an increase in availability of pharmaceutical opioids and by an increase in their consumption, specifically, for pain treatment, more so in the past twenty years, it has led to an economic cost of prescription opioid abuse, overdose, and dependence in the United States estimated to be 78.5 billion USD. The purpose of this systematic review was to identify and evaluate public health strategies that contribute towards combatting the opioid crisis. Methods Using the Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) checklist, a search was conducted of the PubMed database for articles in English language that analyzed the most effective ways to regulate health markets to decrease the opioid crisis in the United States. Results The initial search yielded 2397 titles, of which 15 full-text articles were ultimately selected for inclusion in this systematic review. The review identified four categories in overcoming this epidemic nationwide, including required improvement in patient utilization of and access to safe and effective treatment options for opioid abuse and overdose, addressing the stigma correlated with opioid use, considering appropriate use of abuse deterrent formulations (ADF) along with patient education, and improving prescribing practices via utilization of drug monitoring programs, CDC opioid prescribing guidelines and provider continuing education. Conclusions Attempts to combat the opioid epidemic have been made, and the state and federal governments have only recently started to understand the magnitude of the seriousness of this public health crisis. While the methods with promising improvement of the situation have been identified, implementing them has shown to be a challenge. Continued application is needed, while considering possible new steps that could help reinforce their utilization further. Key messages Attempts to combat the opioid epidemic have been made, and the state and federal governments have only recently started to understand the magnitude of the seriousness of this public health crisis. The methods with promising improvement of the opioid crisis situation have been identified, however utilizing and implementing the existing public health strategies has shown to be a challenge.


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