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Emotions From Salivary Biomarkers in an Architectural Context

Observational Emotions

For patients and families

In plain language

An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.

What is being studied
The protocol lists: Bio-fluid analysis for the measurement of salivary biomarkers linked to emotions.
Who it may be relevant to
Registry conditions: Emotions. Basic parameters: from 18 years · All.
What needs checking
Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
Where it takes place
France
Next step
Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
Official title

Evaluation of Emotions From Salivary Molecular Biomarkers in an Architectural Context

Overview

Architecture influences our well-being. People's behavior and mood changes in different spaces are directly related to the architectural qualities of the built environment. Neuroarchitecture is a discipline that combines neuroscience and architecture to design spaces adapted to the psychological and physiological needs of users. Several studies related to neuroarchitecture have been conducted according to different architectural parameters such as style, natural environment, lighting, color, and sunlight pattern. Recent studies show that emotional states can be evaluated by physiological responses. This physiological regulation comes from the action of enzymes and hormones that represent the activity of the autonomic nervous system. Measuring specific biomarkers through non-invasive biological tests in saliva provides physiological data on an individual's emotional state in response to stimuli, particularly visual or tactile.

Detailed description

Architecture influences our well-being, and people's behavior and mood changes in different spaces are directly related to the architectural qualities of the built environment. For example, noise and lack of vegetation can generate stress and stress associated with the built environment can even negatively impact life expectancy. Moreover, psychology, and more specifically emotional regulation, plays a fundamental role in how individuals perceive and react to their environment. Emotional regulation is closely linked to the attachment style developed during childhood. Studies have shown that insecure attachment is associated with poorer emotional regulation, which can amplify stress reactions in response to an environment perceived as hostile or inadequate. Neuroarchitecture is a discipline that combines neuroscience and architecture to design spaces adapted to the psychological and physiological needs of users. Its main objective is to create environments that positively influence emotions and well-being, taking into account how our brain perceives and reacts to different elements of space. Several studies related to neuroarchitecture have been conducted according to different architectural parameters such as style, natural environment, lighting, color, and sunlight pattern. These studies generally use tools such as self-assessment scales (e.g., PANAS for affect), functional magnetic resonance imaging (fMRI), electroencephalogram (EEG), and heart rate measurement. These often subjective or indirect methods require trained and/or medical personnel and heavy equipment. In addition, emotions and their regulation are influenced by several sociodemographic factors, including age and the development of the prefrontal cortex, but also gender, socioeconomic level, education level, and cultural context. These factors modulate exposure to stress, the available regulation strategies, and their effectiveness. Life history, particularly early exposure to traumatic events, is also determining. These elements justify the attention paid to inclusion and exclusion criteria in the study (particularly age, gender, cultural context, etc.) to best control these variables. Recent studies show that emotional states (positive and negative) can also be evaluated by physiological responses. This physiological regulation comes from the action of enzymes and hormones that represent the activity of the autonomic nervous system. Thus, several studies using the Trier Social Stress Test (TSST) have highlighted an increase in the concentration of cortisol, DeHydroEpiAndrosterone (DHEA), and salivary alpha-amylase in response to a state of acute stress and anxiety in tested individuals. Glenk et al. studied 40 adults (21 to 34 years old, allergic or not) using measures such as the State-Trait Anxiety Inventory (STAI-S) (20 self-reported items), the Emotion Regulation Questionnaire (ERQ), a visual analog scale of perceived stress (VAS), salivary cortisol measurements, and plasma oxytocin. Izawa et al. analyzed salivary DHEA levels, blood pressure, and heart rate in 33 students with an average age of 22. Van Stegeren et al. measured salivary cortisol and alpha-amylase in 80 adults (men and women) exposed to TSST. Furthermore, an association between positive emotions and a decrease in salivary cortisol has also been described by Lai et al. in 80 adults via a questionnaire and salivary cortisol analysis. Oxytocin modulates the integration of emotional information and interacts with the reward pathway. It is released during positive social interactions and can downregulate stress and heart rate (study of 163 young adults under 35, high school level, no medication, questionnaires, filmed interviews, blood oxytocin measurement). Finally, Kanen et al. showed that fluctuations in serotonin concentration can generate various emotional phenotypes, highlighting the neurobiological impact on emotional regulation. It is therefore essential that participation in architectural exposure is voluntary, as the perception of control is a key factor in modulating the emotional response. Finally, measuring specific biomarkers (enzymes, hormones) through non-invasive biological tests in saliva provides reliable physiological data on an individual's emotional state). These approaches have already been applied to analyze the effects of olfactory stimuli (study of 170 participants, questionnaires, and salivary biomarkers) or architectural. The objective of the proposed research is therefore to measure, in an immersive context (architecture festival), salivary molecular biomarkers known to be linked to emotions. These measurements are intended to objectively measure the influence of an architectural context on physiological parameters related to emotions, while taking into account the psychological, sociodemographic, and developmental factors identified through a dedicated questionnaire.

Interventions

  • Diagnostic test Bio-fluid analysis for the measurement of salivary biomarkers linked to emotions
    Saliva of participants will be sampled for analysis of biomarkers of interest (DHEA, oxytocin, cortisol, alpha-amylase, serotonin, and dopamine) using enzymatic dosage methods or ELISA-type methods carried out using commercial kits.

Primary outcome measures

  • Evaluate the variation of salivary biomarkers, which may be linked to emotions (positive or negative), before and after interaction with an architectural work. [Time frame: 2 years]
Secondary outcome measures (4)
  • Identify a salivary molecular biomarker signature linked to an emotional profile following exposure to an architectural site. [Time frame: 2 years]
  • Compare the identified molecular biomarker signatures between the studied architectural sites (different types of visual, tactile, or olfactory stimuli). [Time frame: 2 years]
  • Establish correlations between the identified biomarker signatures linked to emotional profiles and sociodemographic and developmental data. [Time frame: 2 years]
  • Evaluate the homogeneity of the emotional physiological response following exposure to an architectural site. [Time frame: 2 years]

Eligibility criteria

Inclusion criteria

  • Subject over 18 years old
  • Subject agreeing to follow the study procedures
  • Subject capable of understanding the purpose, nature, and methodology of the study
  • Subject affiliated with a French social security scheme or beneficiary of such a scheme.

Exclusion criteria

  • Subject not affiliated with a French Social Security scheme or not a beneficiary of such a scheme
  • Subject deprived of liberty, protected adult, vulnerable person, or minor
  • Subject with proven or suspected chronic infectious disease that could pose a risk of contamination during sample handling (laboratories not equipped to handle this type of sample)
  • Subject with a deficiency (vision, anosmia) preventing proper interaction with the architectural work
  • Subject presenting signs of active oral inflammation, advanced periodontitis, or severe gingivitis
  • Subject suffering from Gougerot-Sjögren syndrome (dry syndrome) or mouth cancer
  • Pregnant or breastfeeding women.

Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.

Healthy volunteers: Yes

Study design

Observational model
Cohort

Study locations

France · 1 center
  • Sys2Diag - Umr9005 Cnrs/Alcen — Montpellier

Publications

  • Choo H, Nasar JL, Nikrahei B, Walther DB. Neural codes of seeing architectural styles. Sci Rep. 2017 Jan 10;7:40201. doi: 10.1038/srep40201. PMID 28071765
  • Roe JJ, Thompson CW, Aspinall PA, Brewer MJ, Duff EI, Miller D, Mitchell R, Clow A. Green space and stress: evidence from cortisol measures in deprived urban communities. Int J Environ Res Public Health. 2013 Sep 2;10(9):4086-103. doi: 10.3390/ijerph10094086. PMID 24002726
  • Giacomello G, Scholten A, Parr MK. Current methods for stress marker detection in saliva. J Pharm Biomed Anal. 2020 Nov 30;191:113604. doi: 10.1016/j.jpba.2020.113604. Epub 2020 Sep 6. PMID 32957066
  • Lai JC, Evans PD, Ng SH, Chong AM, Siu OT, Chan CL, Ho SM, Ho RT, Chan P, Chan CC. Optimism, positive affectivity, and salivary cortisol. Br J Health Psychol. 2005 Nov;10(Pt 4):467-84. doi: 10.1348/135910705X26083. PMID 16238860
  • Glenk LM, Kothgassner OD, Felnhofer A, Gotovina J, Pranger CL, Jensen AN, Mothes-Luksch N, Goreis A, Palme R, Jensen-Jarolim E. Salivary cortisol responses to acute stress vary between allergic and healthy individuals: the role of plasma oxytocin, emotion regulation strategies, reported stress and anxiety. Stress. 2020 May;23(3):275-283. doi: 10.1080/10253890.2019.1675629. Epub 2019 Oct 24. PMID 31578916
  • Santos Schneider F, Molina L, Kahli M, Simphor E, Fournier A, Breau A., Ouedraogo A., Baptiste J., Houot-Cernettig J, Alali M, Dubourg C, Bleuez L, Aguadisch L, Petit V., Molina F, Évaluation objective et en temps réel des émotions induites par un parfum à l'aide d'un test salivaire moléculaire innovant, Cosmétiques, parfums et émotions - L'apport des neurosciences (2nd édition), Chartres, Cosmeti
  • Molina F, Molina L, Schneider F, M Kahli. Method of emotion identification in human salivary samples. FR2315415 (2023) - (PCT/EP2024/088625)
  • Chamilothoria K et al. Subjective and physiological responses to facade and sunlight pattern geometry in virtual reality. Building and Environment 2019; 150; 144-155

Identifiers

NCT: NCT07507266 · 2025-A00909-40 · 25.01443.000493#1

Primary sources (government registries)

View this study on ClinicalTrials.gov ↗