ISSN 1671-3710
CN 11-4766/R
主办:中国科学院心理研究所
出版:科学出版社

心理科学进展 ›› 2026, Vol. 34 ›› Issue (12): 2321-2343.doi: 10.3724/SP.J.1042.2026.2321 cstr: 32111.14.2026.2321

• 研究前沿 • 上一篇    下一篇

孤独症谱系障碍的多感觉时间整合:特征、机制与干预

陈雁, 李晶   

  1. 中国科学院心理研究所, 认知科学与心理健康全国重点实验室, 北京 100101;
    中国科学院大学心理学系, 北京 100049
  • 收稿日期:2025-03-02 出版日期:2026-12-15 发布日期:2026-09-30
  • 通讯作者: 李晶, E-mail: lij@psych.ac.cn
  • 基金资助:
    国家科技创新2030重大项目(2022ZD0205100)、认知科学与心理健康国家重点实验室科学基金(E5CX1201GZ)、国家自然科学基金(31971009)、中国科学院青年创新促进会

Multisensory temporal integration in autism: characteristics, mechanisms, and intervention prospects

CHEN Yan, LI Jing   

  1. State Key Laboratory of Cognitive Science and Mental Health, Institute of Psychology, Chinese Academy of Sciences, Beijing 100101, China;
    Department of Psychology, University of Chinese Academy of Sciences, Beijing 100049, China
  • Received:2025-03-02 Online:2026-12-15 Published:2026-09-30

摘要: 孤独症谱系障碍(Autism spectrum disorder, ASD)的多感觉时间整合缺陷是联结低阶感知异常与高阶社交障碍的重要环节。本研究系统综述了ASD个体在多感觉时间整合领域的研究进展。在行为层面, 表现为基础时间窗口异常、动态时间协调困难和社交线索整合障碍。在神经生理层面, 自主神经失调、神经递质调节障碍, 以及关键脑区激活和连接异常构成其生物学基础。在认知层面, 以“弱先验”和“预测误差精度调节失灵”为核心的预测编码障碍, 与非典型注意模式相互交织, 共同解释了个体难以形成精确时间预期并进行实时整合的机制。基于上述分析, 本文提出“ASD多感觉时间整合的神经生理-认知-行为级联模型”。针对ASD个体的感知觉特征, 感觉统合训练与人际同步干预在理论上可能作用于时间整合的核心靶点, 可能对感知觉状态与人际同步能力产生积极影响, 进而潜在地促进社交技能发展。但这一因果路径目前仅为理论推论, 仍需未来干预研究结合多模态指标加以实证检验。

关键词: 孤独症谱系障碍, 多感觉时间整合, 时间绑定窗口, 时间同步, 人际同步

Abstract: The core scientific question addressed in this paper is: Through what mechanism do deficits in multisensory temporal integration in individuals with autism spectrum disorder (ASD) link low-level perceptual anomalies to high-level social dysfunction? To address this question, we propose a neurophysiological-cognitive-behavioral cascade model that delineates the causal pathway from biological disturbances to temporal processing deficits and, ultimately, to social interaction impairments. Based on this model, we derive mechanism-guided intervention principles. The main innovative contributions are as follows:
1. Establishing multisensory temporal integration as a mechanistic hub. Rather than merely cataloguing perceptual and social findings separately, this paper explicitly identifies dysfunction in multisensory temporal integration—specifically, a widened temporal binding window (TBW), impaired dynamic temporal coordination (unstable simultaneity judgments, increased sensorimotor asynchrony and variability), and disrupted integration of dynamic social cues (audiovisual speech, bodily synchrony)—as the critical mechanistic hub linking basic perception to complex social behavior.
2. Proposing a neurophysiological-cognitive-behavioral cascade model. Individuals with ASD exhibit atypical cross-sensory response patterns early in life (hyporesponsiveness, hyperresponsiveness, sensory seeking), which constitute the initial starting point of the cascade and directly affect the precision and stability of their perception of the world.
At the neurophysiological level, successful temporal alignment requires precise neural “alignment” of cross-modal signals. ASD is characterized by: (a) autonomic nervous system dysregulation (reduced heart rate variability, atypical electrodermal responses), which compromises the physiological baseline for processing dynamic temporal information; (b) neurotransmitter imbalances (dopamine, melatonin, oxytocin), which affect the perception and judgment of temporal rhythms; and (c) neural activation and connectivity deficits—reduced activation in the temporoparietal junction, inferior frontal gyrus, and superior temporal sulcus, coupled with diminished interregional functional connectivity, particularly reduced gamma-band (30-80 Hz) oscillatory synchrony critical for temporal binding. Together, these abnormalities constitute the biological foundation of temporal integration deficits.
At the cognitive level, neurophysiological anomalies are further mediated and amplified by cognitive processing. First, predictive coding impairments—characterized by “weak priors” and maladaptive precision weighting of prediction errors—prevent individuals with ASD from generating and updating precise internal models to predict upcoming sensory input. Second, atypical attention patterns (reduced social orienting, inappropriate attentional allocation) make it difficult for them to selectively bind temporally relevant information within a multisensory stream. These two mechanisms interact bidirectionally and, over the course of development, further impede neurophysiological maturation.
At the behavioral level, the convergence of neurophysiological and cognitive abnormalities produces three core features: (a) a widened TBW—an abnormally long temporal window for judging simultaneity, reflecting “blurriness” in the perception of temporal synchrony; (b) dynamic temporal coordination deficits—increased asynchrony and higher variability in sensorimotor synchronization tasks (e.g., finger-tapping to a beat), revealing instability in temporal perception and internal timing; and (c) impaired integration of social cues—difficulty integrating multisensory social signals (e.g., voice-lip movement, facial expression-prosody), leading to deficits in turn-taking, joint attention, and empathic responding.
Importantly, these behavioral deficits are modulated by task context (e.g., complexity, social relevance) and produce distal cascading effects: they directly impair the synchronous integration of social cues, erode episodic memory and social associative learning, and ultimately constitute a significant perceptual foundation of core social communication deficits in ASD. The model also highlights a negative feedback loop, whereby behavioral and cognitive difficulties further exacerbate neurophysiological dysregulation.
3.Intervention principles grounded in core deficits. Sensory integration therapy, by providing structured rhythmic vestibular, proprioceptive, and tactile inputs, optimizes arousal levels and neural synchronization, potentially narrowing the TBW and enhancing multisensory integration efficiency. Rhythm-based interpersonal synchrony interventions (e.g., joint drumming, coordinated movement games), by providing rhythmic cues, directly train temporal prediction and online error correction, strengthen internal timing models, and promote functional connectivity within sensorimotor and social brain networks. Theoretically, a combined approach that integrates low-level sensory regulation with high-level temporal prediction training may form a precise intervention pathway from basic perception to social coordination.
This paper offers a novel problem-solving framework that reframes social deficits in ASD as arising from fundamental abnormalities in multisensory temporal integration. By specifying a neurophysiological-cognitive-behavioral cascade and deriving testable, targeted intervention principles, it provides a more precise and dynamic theoretical perspective for understanding social interaction difficulties in autism and for developing precision interventions. Future research should employ rigorous randomized controlled trials that directly measure TBW and gamma-band synchrony to establish causal evidence for the effects of these interventions on improving temporal integration and social function.

Key words: autism spectrum disorder, multisensory temporal integration, temporal binding window, temporal synchrony, interpersonal synchrony