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LINK . SPRINGER . COM {}

  1. Analyzed Page
  2. Matching Content Categories
  3. CMS
  4. Monthly Traffic Estimate
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  6. Keywords
  7. Topics
  8. Questions
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  11. Analytics And Tracking
  12. Libraries
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We are analyzing https://link.springer.com/article/10.1007/s11306-008-0142-2.

Title:
Metabolic acidosis and the importance of balanced equations | Metabolomics
Description:
Balancing biochemical equations for both mass and charge in metabolic networks is critical but unfortunately ignored too often. Failure to do so, for example, results in a common misconception about the origin of protons during lactic fermentation. Lactate, rather than lactic acid, is produced by glycolysis, and its production is a mechanism for alleviating intracellular acidosis due to glycolysis. This error is at the core of some recent papers, and is often ambiguous in biochemistry textbooks.
Website Age:
28 years and 1 months (reg. 1997-05-29).

Matching Content Categories {πŸ“š}

  • Education
  • Telecommunications
  • Science

Content Management System {πŸ“}

What CMS is link.springer.com built with?

Custom-built

No common CMS systems were detected on Link.springer.com, and no known web development framework was identified.

Traffic Estimate {πŸ“ˆ}

What is the average monthly size of link.springer.com audience?

🌠 Phenomenal Traffic: 5M - 10M visitors per month


Based on our best estimate, this website will receive around 5,000,019 visitors per month in the current month.
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How Does Link.springer.com Make Money? {πŸ’Έ}

We can't figure out the monetization strategy.

The purpose of some websites isn't monetary gain; they're meant to inform, educate, or foster collaboration. Everyone has unique reasons for building websites. This could be an example. Link.springer.com could be getting rich in stealth mode, or the way it's monetizing isn't detectable.

Keywords {πŸ”}

article, google, scholar, cas, pubmed, journal, metabolic, lane, fan, louisville, privacy, cookies, acidosis, higashi, cancer, regulation, content, publish, research, search, metabolomics, equations, andrew, teresa, biochemical, lactic, glycolysis, intracellular, biochemistry, access, science, doi, usa, function, data, information, log, balanced, november, richard, acid, discover, doiscience, metabolism, sciences, nature, download, author, university, springer,

Topics {βœ’οΈ}

month download article/chapter proton-linked monocarboxylate transporter latest performance-enhancing drug article metabolomics aims metabolic acidosis clinical cancer research full article pdf privacy choices/manage cookies intracellular acidosis enhances balanced equations p-31 nmr investigation p-31 chemical-shifts european economic area metabolic networks conditions privacy policy intracellular ph measurements accepting optional cookies functional significance high aerobic glycolysis author information authors cancer cell metabolism glycolysis-impaired tumors article log intracellular ph regulation journal finder publish nature reviews check access instant access article cite article lane related subjects fan center privacy policy personal data biochemical journal national academy books a biochemical sciences lactic fermentation optional cookies manage preferences lactic acid subscription content latest articles lactic acid monocarboxylate transporters drug delivery author correspondence cancer cells data protection

Questions {❓}

  • Why do cancers have high aerobic glycolysis?

Schema {πŸ—ΊοΈ}

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         headline:Metabolic acidosis and the importance of balanced equations
         description:Balancing biochemical equations for both mass and charge in metabolic networks is critical but unfortunately ignored too often. Failure to do so, for example, results in a common misconception about the origin of protons during lactic fermentation. Lactate, rather than lactic acid, is produced by glycolysis, and its production is a mechanism for alleviating intracellular acidosis due to glycolysis. This error is at the core of some recent papers, and is often ambiguous in biochemistry textbooks.
         datePublished:2008-11-20T00:00:00Z
         dateModified:2008-11-20T00:00:00Z
         pageStart:163
         pageEnd:165
         sameAs:https://doi.org/10.1007/s11306-008-0142-2
         keywords:
            Lactic acidosis
            Balanced equation
            Biochemistry
            general
            Molecular Medicine
            Cell Biology
            Developmental Biology
            Biomedicine
         image:
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               type:ImageObject
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         author:
               name:Andrew N. Lane
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                     address:
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      headline:Metabolic acidosis and the importance of balanced equations
      description:Balancing biochemical equations for both mass and charge in metabolic networks is critical but unfortunately ignored too often. Failure to do so, for example, results in a common misconception about the origin of protons during lactic fermentation. Lactate, rather than lactic acid, is produced by glycolysis, and its production is a mechanism for alleviating intracellular acidosis due to glycolysis. This error is at the core of some recent papers, and is often ambiguous in biochemistry textbooks.
      datePublished:2008-11-20T00:00:00Z
      dateModified:2008-11-20T00:00:00Z
      pageStart:163
      pageEnd:165
      sameAs:https://doi.org/10.1007/s11306-008-0142-2
      keywords:
         Lactic acidosis
         Balanced equation
         Biochemistry
         general
         Molecular Medicine
         Cell Biology
         Developmental Biology
         Biomedicine
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      author:
            name:Andrew N. Lane
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                  name:University of Louisville
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                     type:PostalAddress
                  type:Organization
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                  name:University of Louisville
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                     name:JG Brown Cancer Center, University of Louisville, Louisville, USA
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                     name:Center for Regulatory Environmental Analytical Metabolomics, University of Louisville, Louisville, USA
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               name:JG Brown Cancer Center, University of Louisville, Louisville, USA
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               name:Center for Regulatory Environmental Analytical Metabolomics, University of Louisville, Louisville, USA
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      name:Teresa W.-M. Fan
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            name:University of Louisville
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               type:PostalAddress
            type:Organization
            name:University of Louisville
            address:
               name:Center for Regulatory Environmental Analytical Metabolomics, University of Louisville, Louisville, USA
               type:PostalAddress
            type:Organization
            name:University of Louisville
            address:
               name:Department of Chemistry, University of Louisville, Louisville, USA
               type:PostalAddress
            type:Organization
      name:Richard M. Higashi
      affiliation:
            name:University of Louisville
            address:
               name:Center for Regulatory Environmental Analytical Metabolomics, University of Louisville, Louisville, USA
               type:PostalAddress
            type:Organization
            name:University of Louisville
            address:
               name:Department of Chemistry, University of Louisville, Louisville, USA
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      name:JG Brown Cancer Center, University of Louisville, Louisville, USA
      name:Center for Regulatory Environmental Analytical Metabolomics, University of Louisville, Louisville, USA
      name:JG Brown Cancer Center, University of Louisville, Louisville, USA
      name:Center for Regulatory Environmental Analytical Metabolomics, University of Louisville, Louisville, USA
      name:Department of Chemistry, University of Louisville, Louisville, USA
      name:Center for Regulatory Environmental Analytical Metabolomics, University of Louisville, Louisville, USA
      name:Department of Chemistry, University of Louisville, Louisville, USA
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External Links {πŸ”—}(78)

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