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Endocrine Signaling01:45

Endocrine Signaling

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Endocrine cells produce hormones to communicate with remote target cells found in other organs. The hormone reaches these distant areas using the circulatory system. This exposes the whole organism to the hormone but only those cells expressing hormone receptors or target cells are affected. Thus, endocrine signaling induces slow responses from its target cells but these effects also last longer.
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What is the Endocrine System?00:46

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The endocrine system sends hormones—chemical signals—through the bloodstream to target cells—the cells the hormones selectively affect. These signals are produced in endocrine cells, secreted into the extracellular fluid, and then diffuse into the blood. Eventually, they diffuse out of the blood and bind to target cells which have specialized receptors to recognize the hormones.
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The Endocrine System01:29

The Endocrine System

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The endocrine system is an extensive network of glands – organs or tissues in the body that create chemicals that control many bodily functions, that secrete hormones, which are chemical messengers that play essential roles in regulating various bodily functions. These hormones are secreted into the bloodstream and travel throughout the body. They require specific receptors to convey signals to cells possessing these corresponding receptors. This complex signaling mechanism ensures that...
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An Overview of the Endocrine System01:10

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The endocrine system, a complex network of glands, orchestrates physiological balance within the body through the production and secretion of hormones. These hormones are chemical messengers in intercellular communication, acting as conduits between the secretory cells and distant target sites. They traverse the circulatory system by being released into the extracellular fluid, and their impact is specific to cells possessing receptors for a particular hormone.
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Structures of the Endocrine System00:59

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The intricate framework of the endocrine system encompasses a diverse array of glands, with their target tissues and organs strategically distributed throughout the body. Central to this network are the endocrine glands, specialized structures that lack ducts and release hormones directly into the interstitial fluid. Notably, the hypothalamus, a vital neuroendocrine organ situated in the brain, governs neural functions and serves as a potent source of hormonal regulation. Near the hypothalamus...
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What is Energy?04:10

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The universe is composed of matter in different forms, and all forms of matter contain energy.  The different forms of energy on Earth originate from the Sun — the ultimate energy source. Plants capture light energy from the Sun, and, via the process of photosynthesis, convert it into chemical energy. This stored energy from plants can be harnessed in many ways. For example, eating plant products as food provides energy for our body to function, and burning wood or coal (fossilized...
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Mindfulness in Motion MIM: An Onsite Mindfulness Based Intervention MBI for Chronically High Stress Work Environments to Increase Resiliency and Work Engagement
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エネルギー配分レジリエンスと内分泌統合

Corey B Schuler1, Allison B Sayre2, Lara Zakaria3,4,5

  • 1Department of Nursing, Augsburg University, Minneapolis, MN 55454, USA.

International journal of molecular sciences
|February 13, 2026
PubMed
まとめ

回復力は,単なる心理的プロセスではなく,生物エネルギー的なプロセスです. ストレスはエネルギー配分システム (EAS) を介して代謝,内分泌,免疫系に影響を与え,協調されたエネルギーガバナンスを明らかにします.

キーワード:
エネルギー配分 エネルギー配分エネルギーガバナンス エネルギーガバナンスヒポタラム - 垂体 - 副腎軸視床下垂体 - 視床下垂体 - 陰茎軸ヒポタラム - 垂体 - 甲状腺軸免疫メタボリズムミトコンドリア・リザーブ・キャパシティ回復力 (レジリエンス)ストレス生理学 ストレス生理学甲状腺ホルモンの代謝

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科学分野:

  • 統合生理学 統合生理学
  • ストレス生理学 ストレス生理学
  • バイオエネルギー学 バイオエネルギー学

背景:

  • 回復力はしばしば心理的な特徴と見なされます.
  • しかし,レジリエンスにおける失敗は,代謝,内分泌,免疫,および認知システム全体で現れます.
  • 既存の研究は,これらの多システムストレス反応のための統合的枠組みを欠いている.

研究 の 目的:

  • バイオエネルギー特性としてのレジリエンスについて検討する.
  • エネルギー配分システム (EAS) の枠組みを提案する.
  • 協調されたエネルギーガバナンスによる多システムストレス反応パターンを説明する.

主な方法:

  • 内分泌学,ミトコンドリア生物学,免疫代謝,ストレス生理学の証拠を合成する.
  • 視床下垂体 - 視床下垂体 - 腎上腺 (HPA),甲状腺 (HPT),性腺 (HPG) の軸をエネルギーガバナンスネットワークとして概念化する.
  • ストレス下における内分泌の再編成とミトコンドリアの準備能力に関する文献のレビュー.

主要な成果:

  • ミトコンドリアの準備能力は,代謝のホルモン調節,免疫耐性,回復を制限する.
  • 予測可能な内分泌のシフトは,エネルギー的なストレスの間に発生し,グルココルチコイドを優先し,アナボリズムを抑制します.
  • これらのパターンは,孤立した臓器機能不全ではなく,適応的なエネルギー保存を表しています.

結論:

  • EASフレームワークは,調整されたエネルギーガバナンスとしてのレジリエンスの統一された見方を提供します.
  • このモデルは,内分泌機能とバイオエネルギー能力と回復を結びつけています.
  • バイオマーカーとサイコメトリックの測定は,エネルギー分配を反映し,臨床的解釈を助けることができます.