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Related Concept Videos

Sedatives and Hypnotics Drugs: Miscellaneous Agents01:17

Sedatives and Hypnotics Drugs: Miscellaneous Agents

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Sedatives and hypnotics encompass a wide range of substances, each with its unique mechanism of action, uses, and potential adverse effects.
Melatonin congeners like ramelteon (Rozerem) and tasimelteon (Hetlioz) selectively bind to melatonin receptors (MT1 and MT2) and thus mimic the actions of melatonin, a hormone that regulates sleep-wake cycles. Tasimelteon is primarily used for non-24-hour sleep-wake disorder, common in blind patients. They are also used to treat conditions like insomnia...
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Management of Insomnia01:19

Management of Insomnia

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The sleep cycle, an integral part of human health, consists of several stages with distinct characteristics and functions. It begins with a transition from wakefulness to sleep, known as the light sleep phase, followed by the restorative deep sleep phase, essential for physical recovery and growth. The cycle concludes with the Rapid Eye Movement (REM) phase, characterized by high brain activity and vivid dreaming. Insomnia, a prevalent sleep disorder, involves difficulty falling asleep, staying...
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Sedatives and Hypnotics: Overview01:23

Sedatives and Hypnotics: Overview

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Sedatives are drugs that alleviate anxiety, while hypnotics induce sleep. Both classes of medication suppress neuronal activity, leading to a calming effect for sedatives and facilitating sleep for hypnotics.
Sedative-hypnotics are categorized into barbiturates, benzodiazepines (BZDs), and non-benzodiazepines or Z-drugs. These drugs work by suppressing central nervous system activity, and this suppression is dose-dependent. Older sedative medications, like barbiturates, follow a linear curve in...
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Understanding Sleep01:11

Understanding Sleep

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Sleep, an essential biological state, involves significant reductions in physical activity, sensory awareness, and interaction with the environment. This complex physiological process is primarily regulated by specific brain regions, notably the hypothalamus and pons, which govern the sleep-wake cycle or circadian rhythm.
The circadian rhythm, a nearly 24-hour cycle, is deeply influenced by environmental light cues. Light exposure directly affects the hypothalamus, which in turn regulates...
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Sleep-Wake Cycles01:24

Sleep-Wake Cycles

1.3K
Sleep is an essential physiological process vital to maintaining overall well-being. The reticular activating system (RAS), a network of neurons in the brainstem, regulates wakefulness and sleep. While it may seem passive, sleep consists of distinct cycles, each with its unique characteristics and functions. Two key sleep phases are non-rapid eye movement (NREM) and  rapid eye movement (REM).
NREM Sleep
NREM sleep comprises four progressive stages that seamlessly merge:
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Sleepwalking and Sleep Talking01:17

Sleepwalking and Sleep Talking

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Somnambulism, commonly known as sleepwalking, involves individuals engaging in activities ranging from simple walking to more complex behaviors such as driving. Sleepwalking typically occurs during the slow-wave sleep stages 3 and 4 early in the night when the person is not dreaming, contradicting the myth that sleepwalkers are acting out their dreams.
Factors that increase the likelihood of sleepwalking include sleep deprivation and alcohol consumption. Contrary to common beliefs, it is safe...
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Potent Anti-Glioblastoma Effects of Next-Generation MNK Inhibitors.

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Related Experiment Video

Updated: Jun 25, 2025

Author Spotlight: Overcoming Challenges in Drosophila Sleep Measurement Using DAM System
05:59

Author Spotlight: Overcoming Challenges in Drosophila Sleep Measurement Using DAM System

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Schlafens: Emerging Therapeutic Targets.

Ricardo E Perez1,2, Frank Eckerdt1,2, Leonidas C Platanias1,2,3

  • 1Robert H. Lurie Comprehensive Cancer Center of Northwestern University, Chicago, IL 60611, USA.

Cancers
|May 25, 2024
PubMed
Summary

Interferons (IFNs) impact cancer therapy by inhibiting cancer growth. Their target genes, Schlafens, are crucial for cell functions and are implicated in cancer, emerging as biomarkers and drug targets.

Keywords:
Schlafen (SLFN)cancerimmune therapyinterferon (IFN)

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Area of Science:

  • Immunology and Cancer Biology
  • Cytokine Signaling and Gene Regulation

Background:

  • The interferon (IFN) family of cytokines has been studied for over 50 years for its role in cancer therapy.
  • IFNs inhibit malignant cell proliferation and modulate immune responses, influencing cancer progression and treatment.
  • Schlafen (SLFN) genes are transcriptional targets of IFNs, and their protein products play key roles in cellular processes.

Purpose of the Study:

  • To highlight research on the role of Schlafens in cancer.
  • To explore the potential of Schlafens as cancer biomarkers.
  • To present the rationale for developing drugs targeting Schlafen proteins in cancer therapy.

Main Methods:

  • Review of existing scientific literature on interferon signaling and Schlafen gene family.
  • Analysis of studies investigating the expression and function of Schlafen proteins in various cancers.
  • Examination of research linking Schlafen dysregulation to cancer pathophysiology and treatment response.

Main Results:

  • Schlafen proteins modulate critical cellular functions including proliferation, differentiation, immune response, viral replication, and chemosensitivity.
  • Abnormal expression of specific Schlafens is associated with the development and progression of diverse cancers.
  • Schlafens demonstrate potential as reliable biomarkers for cancer diagnosis and prognosis.

Conclusions:

  • Schlafens are emerging as significant players in cancer biology, influencing tumor growth and immune evasion.
  • The dysregulation of Schlafen expression highlights their contribution to cancer pathophysiology.
  • Schlafens represent promising novel biomarkers and therapeutic targets for the development of targeted cancer drugs.