Jump to content
 







Main menu
   


Navigation  



Main page
Contents
Current events
Random article
About Wikipedia
Contact us
Donate
 




Contribute  



Help
Learn to edit
Community portal
Recent changes
Upload file
 








Search  

































Create account

Log in
 









Create account
 Log in
 




Pages for logged out editors learn more  



Contributions
Talk
 



















Contents

   



(Top)
 


1 Discovery  





2 Malperfusion  





3 Measurement  



3.1  Microspheres  





3.2  Nuclear medicine  





3.3  Magnetic resonance imaging  





3.4  Computed tomography (CT)  





3.5  Thermal diffusion  







4 See also  





5 References  





6 External links  














Perfusion






العربية
Български
Bosanski
Català
Deutsch
Español
فارسی
Français

Italiano
עברית
Nederlands
Polski
Português
Română
Русский
Svenska

Türkçe
Українська
 

Edit links
 









Article
Talk
 

















Read
Edit
View history
 








Tools
   


Actions  



Read
Edit
View history
 




General  



What links here
Related changes
Upload file
Special pages
Permanent link
Page information
Cite this page
Get shortened URL
Download QR code
Wikidata item
 




Print/export  



Download as PDF
Printable version
 
















Appearance
   

 






From Wikipedia, the free encyclopedia
 


ALindbergh perfusion pump, c. 1935, an early device for simulating natural perfusion

Perfusion is the passage of fluid through the circulatory systemorlymphatic system to an organ or a tissue,[1] usually referring to the delivery of blood to a capillary bed in tissue. Perfusion may also refer to fixation via perfusion, used in histological studies. Perfusion is measured as the rate at which blood is delivered to tissue,[2] or volume of blood per unit time (blood flow) per unit tissue mass. The SI unit is m3/(s·kg)[citation needed], although for human organs perfusion is typically reported in ml/min/g.[3] The word is derived from the French verb perfuser, meaning to "pour over or through".[4] All animal tissues require an adequate blood supply for health and life. Poor perfusion (malperfusion), that is, ischemia, causes health problems, as seen in cardiovascular disease, including coronary artery disease, cerebrovascular disease, peripheral artery disease, and many other conditions.

Tests verifying that adequate perfusion exists are a part of a patient's assessment process that are performed by medical or emergency personnel. The most common methods include evaluating a body's skin color, temperature, condition (dry/soft/firm/swollen/sunken/etc), and capillary refill.

During major surgery, especially cardiothoracic surgery, perfusion must be maintained and managed by the health professionals involved, rather than left to the body's homeostasis alone. As the lead surgeons are often too busy to handle all hemodynamic control by themselves, specialists called perfusionists manage this aspect. There are more than one hundred thousand perfusion procedures annually.[5]

Discovery[edit]

In 1920, August Krogh was awarded the Nobel Prize in Physiology or Medicine for his discovering the mechanism of regulation of capillariesinskeletal muscle.[6][7] Krogh was the first to describe the adaptation of blood perfusion in muscle and other organs according to demands through the opening and closing of arterioles and capillaries.[citation needed]

Malperfusion[edit]

Malperfusion can refer to any type of incorrect perfusion though it usually refers to hypoperfusion. The meaning of the terms "overperfusion" and "underperfusion" is relative to the average level of perfusion that exists across all the tissues in an individual body. Perfusion levels also differ from person to person depending on metabolic demand.[citation needed]

Examples follow:[citation needed]

Overperfusion and underperfusion should not be confused with hypoperfusion and hyperperfusion, which relate to the perfusion level relative to a tissue's current need to meet its metabolic needs. For example, hypoperfusion can be caused when an arteryorarteriole that supplies blood to a volume of tissue becomes blocked by an embolus, causing either no blood or at least not enough blood to reach the tissue. Hyperperfusion can be caused by inflammation, producing hyperemia of a body part. Malperfusion, also called poor perfusion, is any type of incorrect perfusion. There is no official or formal dividing line between hypoperfusion and ischemia; sometimes the latter term refers to zero perfusion, but often it refers to any hypoperfusion that is bad enough to cause necrosis.[citation needed]

Measurement[edit]

In equations, the symbol Q is sometimes used to represent perfusion when referring to cardiac output. However, this terminology can be a source of confusion since both cardiac output and the symbol Q refer to flow (volume per unit time, for example, L/min), whereas perfusion is measured as flow per unit tissue mass (mL/(min·g)).[citation needed]

Microspheres[edit]

Microspheres that are labeled with radioactive isotopes have been widely used to measure perfusion since the 1960s. Radioactively labeled particles are injected into the test subject and a radiation detector measures radioactivity in tissues of interest.[8] Microspheres are used in radionuclide angiography, a method of diagnosing heart problems.

In the 1990s, methods for using fluorescent microspheres became a common substitute for radioactive particles.[9]

Nuclear medicine[edit]

Perfusion of various tissues can be readily measured in vivo with nuclear medicine methods which are mainly positron emission tomography (PET) and single photon emission computed tomography (SPECT).[citation needed] Various radiopharmaceuticals targeted at specific organs are also available, some of the most common are:[citation needed]

Magnetic resonance imaging[edit]

Two main categories of magnetic resonance imaging (MRI) techniques can be used to measure tissue perfusion in vivo.

Computed tomography (CT)[edit]

Brain perfusion (more correctly transit times) can be estimated with contrast-enhanced computed tomography.[12]

Thermal diffusion[edit]

Perfusion can be determined by measuring the total thermal diffusion and then separating it into thermal conductivity and perfusion components.[13] rCBF is usually measured continuously in time. It is necessary to stop the measurement periodically to cool down and reassess the thermal conductivity.[citation needed]

See also[edit]

References[edit]

  1. ^ American Psychological Association (APA): perfusion. (n.d.). Dictionary.com Unabridged (v 1.1). Retrieved March 20, 2008, from Dictionary.com website: http://dictionary.reference.com/browse/perfusion
  • ^ Thomas DL, Lythgoe MF, Pell GS, Calamante F, Ordidge RJ (2000). "The measurement of diffusion and perfusion in biological systems using magnetic resonance imaging". Phys Med Biol. 45 (8): R97-138. doi:10.1088/0031-9155/45/8/201. PMID 10958179.
  • ^ Engblom H, Xue H, Akil S, Carlsson M, Hindorf C, Oddstig J, Hedeer F, Hansen MS, Aletras AH, Kellman P, Arheden H (2017). "Fully quantitative cardiovascular magnetic resonance myocardial perfusion ready for clinical use: a comparison between cardiovascular magnetic resonance imaging and positron emission tomography". J Cardiovasc Magn Reson. 19 (1): 78. doi:10.1186/s12968-017-0388-9. PMC 5648469. PMID 29047385.
  • ^ "Perfusion > What is Perfusion?". Cardiovascular Perfusion Forum.
  • ^ "Perfusion > Perfusion Services". Specialty Care Services Group. Archived from the original on 2018-12-17. Retrieved 2017-01-02.
  • ^ Larsen, E. H. (2007). "August Krogh (1874–1949): 1920 Nobel Prize". Ugeskrift for Laeger. 169 (35): 2878. PMID 17877986.
  • ^ Sulek, K. (1967). "Nobel prize for August Krogh in 1920 for his discovery of regulative mechanism in the capillaries". Wiadomosci Lekarskie. 20 (19): 1829. PMID 4870667.
  • ^ Studies of the Circulation with Radioactive Microspheres., Wagner et al, Invest. Radiol., 1969. 4(6): p. 374-386.
  • ^ "Fluorescent Microspheres" (PDF). Fluorescent Microsphere Resource Center. Archived from the original (PDF) on 2012-10-02.
  • ^ Huettel, S. A.; Song, A. W.; McCarthy, G. (2009), Functional Magnetic Resonance Imaging (2 ed.), Massachusetts: Sinauer, ISBN 978-0-87893-286-3
  • ^ Detre, John A.; Rao, Hengyi; Wang, Danny J. J.; Chen, Yu Fen; Wang, Ze (2012-05-01). "Applications of arterial spin labeled MRI in the brain". Journal of Magnetic Resonance Imaging. 35 (5): 1026–1037. doi:10.1002/jmri.23581. ISSN 1522-2586. PMC 3326188. PMID 22246782.
  • ^ L. Axel. Cerebral blood flow determination by rapid-sequence computed-tomography: theoretical analysis. Radiology 137: 679–686, December 1980
  • ^ Vajkoczy P, Roth H, Horn P, et al. (August 2000). "Continuous monitoring of regional cerebral blood flow: experimental and clinical validation of a novel thermal diffusion microprobe". Journal of Neurosurgery. 93 (2): 265–74. doi:10.3171/jns.2000.93.2.0265. PMID 10930012. S2CID 30375395.
  • External links[edit]


    Retrieved from "https://en.wikipedia.org/w/index.php?title=Perfusion&oldid=1216929548"

    Categories: 
    Respiratory physiology
    Cardiovascular physiology
    Underwater diving physiology
    Hidden categories: 
    Articles with short description
    Short description is different from Wikidata
    All articles with unsourced statements
    Articles with unsourced statements from March 2021
    Articles with unsourced statements from January 2014
    Articles with BNF identifiers
    Articles with BNFdata identifiers
    Articles with GND identifiers
    Articles with J9U identifiers
    Articles with LCCN identifiers
    Articles with LNB identifiers
     



    This page was last edited on 2 April 2024, at 20:14 (UTC).

    Text is available under the Creative Commons Attribution-ShareAlike License 4.0; additional terms may apply. By using this site, you agree to the Terms of Use and Privacy Policy. Wikipedia® is a registered trademark of the Wikimedia Foundation, Inc., a non-profit organization.



    Privacy policy

    About Wikipedia

    Disclaimers

    Contact Wikipedia

    Code of Conduct

    Developers

    Statistics

    Cookie statement

    Mobile view



    Wikimedia Foundation
    Powered by MediaWiki