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Related Concept Videos

Passive Filters01:27

Passive Filters

1.0K
Passive filters are utilized to shape the frequency spectrum of signals across a diverse array of applications. These filters, using only passive elements like resistors (R), inductors (L), and capacitors (C), are capable of selectively allowing or blocking certain frequency ranges without the need for external power sources.
Low-Pass Filters
Low-pass filters are designed to transmit signals with frequencies lower than the cutoff frequency, ωc, and attenuate those above it. The cutoff...
1.0K
Active Filters01:25

Active Filters

1.3K
Active filters are electronic circuits that use operational amplifiers (op-amps), resistors, and capacitors to filter out unwanted frequency components from a signal. A first-order low-pass active filter is designed to pass signals with a frequency lower than a certain cutoff frequency and attenuate frequencies higher than that cutoff frequency. The transfer function for a first-order low-pass active filter is:
1.3K
Anatomy of the Heart01:27

Anatomy of the Heart

119.9K
The human heart is made up of three layers of tissue that are surrounded by the pericardium, a membrane that protects and confines the heart. The outermost layer, closest to the pericardium, is the epicardium. The pericardial cavity separates the pericardium from the epicardium. Beneath the epicardium is the myocardium, the middle layer, and the endocardium, the innermost layer. There are four chambers of the heart: the right atrium, the right ventricle, the left atrium, and the left ventricle.
119.9K
Anatomy of the Circulatory System02:03

Anatomy of the Circulatory System

98.1K
The human circulatory system consists of blood, blood vessels that carry blood away from the heart, around the body, and back to the heart, and the heart itself, which acts as a central pump. The systemic circuit supplies blood to the whole body, the coronary circuit supplies blood to the heart, and the pulmonary circuit supplies blood flow between the heart and lungs.
98.1K
Cleavage and Blastulation01:33

Cleavage and Blastulation

50.2K
After a large-single-celled zygote is produced via fertilization, the process of cleavage occurs while zygotes travel through the uterine tube. Cleavage is a mitotic cell division that does not result in growth. With each round of successive cell division, daughter cells get increasingly smaller.
50.2K
Reproductive Cloning01:27

Reproductive Cloning

32.7K
Reproductive cloning is the process of producing a genetically identical copy—a clone—of an entire organism. While clones can be produced by splitting an early embryo—similar to what happens naturally with identical twins—cloning of adult animals is usually done by a process called somatic cell nuclear transfer (SCNT).
Somatic Cell Nuclear Transfer
In SCNT, an egg cell is taken from an animal and its nucleus is removed, creating an enucleated egg. Then a somatic...
32.7K

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Related Experiment Video

Updated: Feb 4, 2026

Implantation of Inferior Vena Cava Interposition Graft in Mouse Model
12:39

Implantation of Inferior Vena Cava Interposition Graft in Mouse Model

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[Inferior Vena Cava Suprarenal Filter Implantation].

S A Prozorov

    Vestnik Rentgenologii I Radiologii
    |September 25, 2018
    PubMed
    Summary

    Inferior vena cava (IVC) suprarenal filters are safe and effective for preventing pulmonary embolism when implanted under strict indications. These include thrombosis, vascular anomalies, and specific high-risk surgical or pregnancy cases.

    Area of Science:

    • Vascular Surgery
    • Interventional Radiology
    • Cardiology

    Background:

    • Pulmonary embolism (PE) remains a significant cause of morbidity and mortality.
    • Inferior vena cava (IVC) filters are used to prevent PE in specific patient populations.
    • Suprarenal IVC filter placement is an alternative to infrarenal placement, with distinct indications.

    Purpose of the Study:

    • To analyze the indications, frequency, safety, and efficacy of suprarenal IVC filter implantation.
    • To define the clinical scenarios where suprarenal IVC filters are most appropriate.

    Main Methods:

    • Systematic review of studies indexed in the Medline database.
    • Analysis of clinical data on suprarenal IVC filter implantation outcomes.

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    Main Results:

    • Suprarenal IVC filters require strict implantation indications.
    • Indications include extensive caval thrombosis, renal vein thrombosis, vascular anomalies, renal tumors with thrombus, and PE prevention in pregnant women with DVT.
    • Implantation prior to surgery is also a key indication.

    Conclusions:

    • Suprarenal IVC filter implantation is a safe and effective method for preventing PE.
    • Adherence to strict clinical indications is crucial for optimal outcomes.
    • This intervention plays a vital role in managing specific thrombotic and embolic risks.