Endogenous Circadian Rhythms in Plant Bioelectric Signals: Cross-Station Replication and Visitor-Driven Suppression in a Public Exhibition
Abstract
1. Introduction
2. Related Work
2.1. Plant Chronobiology
2.2. Plant Electrophysiology
2.3. Machine-Learning Approaches
2.4. Population Chronobiology and Naturalistic Recording
2.5. The Position of the Present Study
3. Materials and Methods
3.1. Exhibition Setup
3.2. Feature Extraction
- std—sample standard deviation of the int16 voltage samples;
- iqr—interquartile range (75th–25th percentile);
- bp_0_1—power in the 0–1 Hz band, computed via Welch’s method (Hann window, 256-sample segment, and 50% overlap);
- bp_1_5—power in the 1–5 Hz band (same Welch parameters);
- zcr—zero-crossing rate of the DC-removed signal.
3.3. Quality Filtering
3.4. Cosinor Analysis
3.5. Software and Reproducibility
4. Results
4.1. Dataset Characteristics
4.2. Circadian Rhythm in bp_1_5: Cross-Station Replication
4.3. Daytime Suppression at the Emotion Station
4.4. Other Spectral Features
5. Discussion
5.1. Cross-Station Replication Establishes the Rhythm
5.2. Phase Variation Across Stations
5.3. Daytime Suppression: Visitor-Coincident Modulation
5.4. Biomimetic Implications
5.5. Limitations
- Single species: All three stations used Primula vulgaris. The rhythm we describe may be specific to this species or to its current physiological state in early spring. Replication in other species (Kalanchoe, lettuce, and basil—species we have used in prior studies) would strengthen the generality claim. Species-specificity also matters for the mechanosensory interpretation in Section 5.3: different species have different mechanosensory thresholds and integration timescales (the Venus-flytrap-like 34 s integration in our companion paper [11] was measured in Kalanchoe, not Primula), so the magnitude of the cliff edge here may not generalize directly to other species at other distances.
- Plant replacement: As noted, individual plants were swapped 2–4 times per station during the recording period, on schedules driven by leaf turgor rather than experimental design. Each station is therefore not strictly a longitudinal recording of a single plant but a longitudinal recording of a fixed sensor location with a sequence of similar plants. The cross-station replication argument and the within-station day-to-day stability (Figure 6) argue that this does not invalidate the rhythm finding.
- Electrode contamination: We have no per-file detector for muddy electrode reattachment, only for fully detached or saturated states. Sensitivity analyses (excluding the lowest-amplitude 25% of files) did not change the rhythm estimates substantially, but a contaminated subset that produces plausible-looking but biologically uncorrelated voltage cannot be definitively excluded. The replication across three independent stations is the main defense against this concern.
- Single season, single location: Recording spanned 3 March–20 April 2026 in a single building in Dietikon, Switzerland (47° N). Different photoperiods (later spring and summer) and different latitudes might produce different acrophases or different relative amplitudes.
- Recording-density imbalance: The emotion station produced 37,461 quality-filtered files concentrated in 17 distinct recording days, while the lamp station produced 26,584 files spread across 38 days. This is an artifact of the emotion application’s architecture (recording only during initial training phases) and means that the emotion station’s rhythm estimate is based on richer per-day sampling but fewer days. The day-by-day heatmap (Figure 6) shows that the rhythm is stable across the days that are sampled, but a longer continuous recording at the emotion station would be needed to detect any slow drift.
- Visitor density was not directly measured: The total daily visitor count is approximately 500 (exhibition-wide average), but hour-by-hour density at each individual station is not available. We use exhibition opening hours (09:00–17:00) as a binary proxy for visitor presence. Since the bp_1_5 cliff edge at 09:00 is itself sharp and consistent across days, this binary proxy is sufficient for our claims.
- Environmental covariates were not directly logged: Although the qualitative characteristics of the balloon-hall environment are known (no direct daylight, artificial overhead lighting on a fixed schedule, and an ambient temperature of 1–2 °C overnight rising to 5–7 °C during daytime), we did not log temperature, humidity, or irradiance directly at the recording stations. Small day-to-day variations in any of these could contribute to the inter-day variability visible in Figure 6. A future deployment would log these covariates alongside the bioelectric signal.
6. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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| Station | Window | n | rel_amp | peak_h | R2_med | p-Value |
|---|---|---|---|---|---|---|
| lamp | all hours | 26,584 | 0.52× | 9.4 | 0.76 | <10−300 |
| lamp | overnight only | 13,124 | 0.64× | 10.7 | 0.90 | <10−300 |
| sound | all hours | 14,386 | 0.35× | 7.2 | 0.72 | <10−300 |
| sound | overnight only | 4183 | 0.42× | 7.5 | 0.78 | <10−150 |
| emotion | all hours | 37,461 | 1.19× | 4.6 | 0.82 | <10−300 |
| emotion | overnight only | 25,376 | 1.05× | 5.3 | 0.87 | 2 × 10−217 |
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Gloor, P.A. Endogenous Circadian Rhythms in Plant Bioelectric Signals: Cross-Station Replication and Visitor-Driven Suppression in a Public Exhibition. Biomimetics 2026, 11, 405. https://doi.org/10.3390/biomimetics11060405
Gloor PA. Endogenous Circadian Rhythms in Plant Bioelectric Signals: Cross-Station Replication and Visitor-Driven Suppression in a Public Exhibition. Biomimetics. 2026; 11(6):405. https://doi.org/10.3390/biomimetics11060405
Chicago/Turabian StyleGloor, Peter A. 2026. "Endogenous Circadian Rhythms in Plant Bioelectric Signals: Cross-Station Replication and Visitor-Driven Suppression in a Public Exhibition" Biomimetics 11, no. 6: 405. https://doi.org/10.3390/biomimetics11060405
APA StyleGloor, P. A. (2026). Endogenous Circadian Rhythms in Plant Bioelectric Signals: Cross-Station Replication and Visitor-Driven Suppression in a Public Exhibition. Biomimetics, 11(6), 405. https://doi.org/10.3390/biomimetics11060405
