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Children experience negative emotions like sadness and fear every day. As they develop and mature, children learn regulatory strategies that allow them to manage a broad range of stressors and challenges to adapt to the world. Their emotion regulation repertoire expands, and shifts in composition from primarily behavioral strategies to include more cognitive strategies1. By the end of middle childhood, children regulate their emotions using both cognitive and behavioral strategies2. Understanding the effective regulation or management of unwanted negative feelings has become increasingly interesting to developmental scientists in recent years. This interest is driven, in part, by research linking emotion regulation processes to a host of social, emotional, and cognitive outcomes with substantial consequences for children's daily lives (e.g., academic achievement3, friendships4, and psychopathology5).
The method described here focuses on two cognitive emotion regulation strategies that have received the lion's share of empirical attention to date: reappraisal and distraction. Studies done with adults have shown that reappraisal and distraction are effective methods for alleviating emotion6,7,8,9,10,11. Reappraisal, which involves changing or reframing how one interprets an emotion or problem, has been shown to be effective in reducing the intensity of negative emotions in school-aged children12,13. Distraction, in contrast, involves changing what one is thinking about, such as when a child about to receive a vaccine thinks instead of the ice cream they will enjoy with their parent afterwards. Children can also begin to use these cognitive strategies to regulate negative emotions effectively, from as young as 5 - 6 years of age14.
The Theoretical and Practical Challenges of Studying Emotion Regulation
Emotional reactivity and regulatory processes are intertwined, bidirectional, and iterative15,16. Thus, a key conceptual challenge for developmental scientists is to identify and employ methods that meaningfully distinguish between emotion responding and regulatory processes. The approach described here takes the view of emotions as regulated (in contrast to emotions as regulating)15. Emotion regulation is defined as the process of changing an experienced emotion17 in ways that alter the intensity, duration, and/or valence of the emotion18.
Despite promising behavioral evidence that cognitive emotion regulation strategies like distraction and reappraisal reduce negative emotions14, there are many limitations to the predominant self-report or observational methodologies that constrain the conclusions that can be drawn from existing empirical studies, especially with young children. For example, self-report of emotional experience is subject to inaccuracies and demand characteristics. Although behavioral observation (e.g., of facial expressions) to index emotional responding is ostensibly more objective than self-report, observation is still subject to automatic and explicit regulatory processes that mask or hide the true experience of distress or negative emotion. To address these conceptual and methodological issues, this paper describes a method of examining the effects of emotion regulation strategies on children's subsequent psychophysiology that allows researchers to more clearly distinguish between reactivity to and active regulation of negative emotions. This experimental paradigm for eliciting negative emotions and assessing the consequences of different instructed emotion regulation strategies provides an approach that can be used with children of a wide range of ages, adolescents, or adults.
Psychophysiology Is a Non-Invasive Index of Emotion Regulation
Respiratory Sinus Arrhythmia (RSA) is a commonly used index of parasympathetic cardiac psychophysiology, and has emerged as a key correlate of children's emotion regulatory ability19,20. RSA is derived from the measurement of heart rate variation (controlled by efferent fibers of the vagus nerve) within the respiratory cycle21,22. High baseline RSA indicates better emotional regulation and socio-emotional competencies21, whereas lower baseline RSA is linked to negative socio-emotional outcomes23. Baseline RSA reflects the system's regulatory capacity to respond to stress, whereas changes in RSA from baseline levels under conditions of challenge (RSA reactivity) enable greater sympathetic influence and resource mobilization. This process reflects a shift away from homeostatic demands to the facilitation of sustained attention, behavioral self-regulation, and the generation of coping strategies to control affective or behavioral arousal20,26. RSA reactivity to challenging lab tasks is associated with better emotion regulatory abilities and general adaptive functioning, including less negative emotionality and risk for behavior problems and better sustained attention21,23,24,25,26,27. RSA reactivity to challenge can be described as increasing (RSA augmentation) or decreasing (RSA suppression) parasympathetic influence. The flexibility with which parasympathetic influence over the heart is regulated across contexts is thought to underlie adaptive emotion regulation.
Indeed, changes in children's RSA amplitudes during a series of challenging tasks predict their emotional regulatory skill28. RSA is responsive in emotionally challenging contexts as well. For example, RSA suppression (a decrease from baseline level to task level) is linked to experiencing fear and sadness, but augmentation (increase from baseline to task) is linked to effective regulation of emotion when sadness and fear are evoked via film clips29,30. Previous work that has capitalized on the utility of this non-invasive method for assessing in vivo emotion regulation processes has demonstrated how children's use of specific cognitive emotion regulation strategies predicted RSA reactivity while they were watching emotion-eliciting videos31. This paper describes a novel experimental paradigm that uses the physiological patterns associated with active emotion regulation to index regulatory ability, providing an innovative method to parse the experience and regulation of negative emotions.