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関連する概念動画

Introduction to Urinary System01:13

Introduction to Urinary System

The urinary system consists of two kidneys, two ureters, the urinary bladder, and the urethra.
The kidneys are bean-shaped organs located in the retroperitoneal space, on either side of the vertebral column, between the T12 and L3 vertebrae. They are partially protected by the rib cage and surrounded by perirenal fat, which provides cushioning. They are responsible for urine formation and play critical roles in regulating blood pressure, electrolyte levels, and hormone production. The ureters...
Physiology of Urine Formation01:24

Physiology of Urine Formation

Urine formation is an essential function of the human body. It plays a critical role in maintaining homeostasis by regulating the volume and composition of body fluids. The kidneys, the primary organs involved in this process, filter blood to remove waste products and excess substances, ultimately producing urine.
Glomerular Filtration
The first stage in urine formation is glomerular filtration. Each kidney contains approximately 1 million nephrons, the functional units of filtration, with a...
Urine: Physical and Chemical Properties01:18

Urine: Physical and Chemical Properties

Urine comprises approximately 95% water and 5% solutes. The primary ingredient, apart from water, is urea - a byproduct of the breakdown of amino acids. Other notable components include uric acid, a residue from nucleic acid metabolism, and creatinine, a metabolite from creatine phosphate breakdown in skeletal muscle tissue.
The concentration of these solutes varies, with urea being the most abundant nitrogenous waste product. Other solutes include sodium, chloride, potassium, phosphate,...
Ureters01:22

Ureters

The ureters are retroperitoneal tubes located on either side of the vertebral column. They are responsible for transporting urine from each kidney to the urinary bladder. These tubes have thick walls and are approximately 25-30 cm long. Their diameter is around 10 mm at the renal pelvis, gradually narrowing to 1 mm as the ureter obliquely enters the posterior bladder wall through the ureteric orifices. The shape of these orifices is slit-like, which helps to prevent urine backflow toward the...
Regulation of Water Output01:26

Regulation of Water Output

The human body predominantly expels water through the urinary system. On average, an individual generates around 1.5 liters of urine each day. This amount can fluctuate based on how well a person is hydrated, but a critical minimum quantity of urine must be produced to ensure the body's proper functioning. Daily, the kidneys remove 600 to 1200 milliosmoles of dissolved substances, effectively excreting excess minerals and water-soluble toxins such as creatinine, urea, and uric acid from the...
Physiology of the Genitourinary System III: Urine Concentration and Dilution01:20

Physiology of the Genitourinary System III: Urine Concentration and Dilution

The kidneys concentrate or dilute urine to maintain water and electrolyte balance. Nephrons, particularly the loop of Henle, play a crucial role in this process through the countercurrent multiplication system. This system establishes a high osmolarity in the renal medulla, which is essential for water reabsorption. In the loop of Henle’s descending limb, water is reabsorbed into the surrounding medulla due to its permeability to water. In contrast, the ascending limb actively transports...

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関連する実験動画

Updated: Jul 19, 2026

Integration of Miniaturized Solid Phase Extraction and LC-MS/MS Detection of 3-Nitrotyrosine in Human Urine for Clinical Applications
08:41

Integration of Miniaturized Solid Phase Extraction and LC-MS/MS Detection of 3-Nitrotyrosine in Human Urine for Clinical Applications

Published on: July 14, 2017

人間の尿中のメラトニンの日々のリズム

H J Lynch, R J Wurtman, M A Moskowitz

    Science (New York, N.Y.)
    |January 17, 1975
    PubMed
    まとめ

    尿中のメラトニン濃度は,健康な成人の昼間の時間と比較して,夜間時間 (11時~7時) で有意に高かった. この研究では,メラトニンの分泌パターンを定量化しています.

    科学分野:

    • バイオケミストリー バイオケミストリー
    • クロノバイオロジー クロノバイオロジー
    • エンドクリノロジー エンドクリノロジー

    背景:

    • メラトニンは,昼夜リズムを調節する重要なホルモンです.
    • メラトニンの分泌パターンを理解することは,クロノバイオロジーの研究にとって極めて重要です.

    研究 の 目的:

    • 人間の尿サンプルにおけるメラトニンレベルを定量化するために.
    • メラトニン分泌の昼間変動を調査するために.

    主な方法:

    • 6人の健康な成人の尿サンプルを24時間単位で採取した.
    • メラトニンは,アンバーライトXAD-2樹脂と有機溶媒のエリューションを用いて濃縮された.
    • 定量化は,バイオアッセイ (アヌランス幼虫の皮膚メラナフォール反応) を用いて実施した.

    主要な成果:

    • 午後11時から7時までの間に採集された尿のメラトニン濃度は,昼間 (7時から15時,午後3時から11時) に採集された尿の数倍でした.
    • 尿中のメラトニン分泌の明確な夜間ピークが観察されました.

    結論:

    • 人間の尿中のメラトニン分泌は,昼間の変動が大きく,夜間のピークが顕著である.

    さらに関連する動画

    Real-Time Void Spot Assay
    06:39

    Real-Time Void Spot Assay

    Published on: February 10, 2023

    Monitoring Circadian Oscillations with a Bioluminescence Reporter in Organoids
    05:44

    Monitoring Circadian Oscillations with a Bioluminescence Reporter in Organoids

    Published on: February 16, 2024

    関連する実験動画

    Last Updated: Jul 19, 2026

    Integration of Miniaturized Solid Phase Extraction and LC-MS/MS Detection of 3-Nitrotyrosine in Human Urine for Clinical Applications
    08:41

    Integration of Miniaturized Solid Phase Extraction and LC-MS/MS Detection of 3-Nitrotyrosine in Human Urine for Clinical Applications

    Published on: July 14, 2017

    Real-Time Void Spot Assay
    06:39

    Real-Time Void Spot Assay

    Published on: February 10, 2023

    Monitoring Circadian Oscillations with a Bioluminescence Reporter in Organoids
    05:44

    Monitoring Circadian Oscillations with a Bioluminescence Reporter in Organoids

    Published on: February 16, 2024

  • これらの発見は,ヒトにおける昼夜リズムのマーカーとしてのメラトニンの役割を支持しています.