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zinc coproporphyrin iii and aminolevulinic acid

zinc coproporphyrin iii has been researched along with aminolevulinic acid in 16 studies

*Aminolevulinic Acid: A compound produced from succinyl-CoA and GLYCINE as an intermediate in heme synthesis. It is used as a PHOTOCHEMOTHERAPY for actinic KERATOSIS. [MeSH]

*Aminolevulinic Acid: A compound produced from succinyl-CoA and GLYCINE as an intermediate in heme synthesis. It is used as a PHOTOCHEMOTHERAPY for actinic KERATOSIS. [MeSH]

Compound Research Comparison

Studies
(zinc coproporphyrin iii)
Trials
(zinc coproporphyrin iii)
Recent Studies (post-2010)
(zinc coproporphyrin iii)
Studies
(aminolevulinic acid)
Trials
(aminolevulinic acid)
Recent Studies (post-2010) (aminolevulinic acid)
1196436,4756652,740

Research

Studies (16)

TimeframeStudies, this research(%)All Research%
pre-19903 (18.75)18.7374
1990's5 (31.25)18.2507
2000's3 (18.75)29.6817
2010's4 (25.00)24.3611
2020's1 (6.25)2.80

Authors

AuthorsStudies
Amantea, A; Anti, M; D'Alessandro Gandolfo, L; de Vitis, I; Fedeli, G; Griso, D; Rapaccini, GL; Topi, GC1
Chambon, H; Labbe, P1
Fukui, S; Isobe, N; Kamihara, T; Nakamura, I; Nakamura, N1
Kimchie, S; Mamet, R; Scharf, R; Schoenfeld, N; Zimmels, Y1
Anderson, KE; Egger, NG; Motamedi, M; Orihuela, E; Pow-Sang, M1
Asirvatham, SJ; Jackman, WM; Johnson, TW; Oberoi, MP1
Doss, MO; Egeler, E; Gross, U; Jacob, K1
Csik, G; Fidy, J; Gabor, F; Szocs, K1
De Matteis, F; Harvey, C1
Balestra, D; Dwyer, BE; Gorman, N; Jacobs, JM; Jacobs, NJ; Sinclair, JF; Sinclair, PR; Trask, HW1
Hanamitsu, H; Iida, K; Kajiwara, M; Nakamura, M1
Beom, HJ; Choi, MS; Lee, JB; Park, HR; Yun, SJ1
Endo, Y; Hagiya, Y; Ishizuka, M; Matsumoto, K; Nakajima, M; Ogura, S; Tanaka, T1
Dailey, HA; Dailey, TA; Gerdes, S; Jahn, D; Jahn, M; O'Brian, MR; Warren, MJ1
Friebe, M; Goeppner, D; Gollnick, H; Illanes, A; Landes, R1
Jansen, ED; Jenkins, JL; Simpson, J; Skaar, EP; Walter, AB1

Reviews

1 review(s) available for zinc coproporphyrin iii and aminolevulinic acid

ArticleYear
Prokaryotic Heme Biosynthesis: Multiple Pathways to a Common Essential Product.
    Microbiology and molecular biology reviews : MMBR, 2017, Volume: 81, Issue:1

    Topics: Aminolevulinic Acid; Archaea; Bacteria; Coproporphyrinogen Oxidase; Coproporphyrins; Heme; Iron; Protoporphyrins; Tetrapyrroles; Uroporphyrinogen Decarboxylase

2017

Trials

1 trial(s) available for zinc coproporphyrin iii and aminolevulinic acid

ArticleYear
Investigations on the formation of urinary coproporphyrin isomers I-IV in 5-aminolevulinic acid dehydratase deficiency porphyria, acute lead intoxication and after oral 5-aminolevulinic acid loading.
    Clinical biochemistry, 1999, Volume: 32, Issue:2

    Topics: Administration, Oral; Aminolevulinic Acid; Coproporphyrins; Humans; Isomerism; Lead Poisoning; Male; Porphobilinogen Synthase; Porphyria, Acute Intermittent

1999

Other Studies

14 other study(ies) available for zinc coproporphyrin iii and aminolevulinic acid

ArticleYear
Porphyrins in Rotor's syndrome: a study on an Italian family.
    Hepato-gastroenterology, 1986, Volume: 33, Issue:1

    Topics: Adult; Aminolevulinic Acid; Coproporphyrins; Female; Humans; Jaundice; Liver; Male; Porphobilinogen; Porphyrins; Syndrome

1986
Synthesis of [14C]coproporphyrin III by yeast cell-free extracts.
    Analytical biochemistry, 1982, Volume: 126, Issue:1

    Topics: Aminolevulinic Acid; Cell-Free System; Chromatography; Coproporphyrins; Methods; Porphyrins; Protoporphyrins; Saccharomyces cerevisiae

1982
Mechanism of thiamine-induced respiratory deficiency in Saccharomyces carlsbergensis.
    Journal of bacteriology, 1981, Volume: 147, Issue:3

    Topics: 5-Aminolevulinate Synthetase; Aminolevulinic Acid; Coproporphyrins; Cytochromes; Heme; Protoporphyrins; Pyridoxine; Saccharomyces; Thiamine

1981
Evidence for the interference of aluminum with bacterial porphyrin biosynthesis.
    Biometals : an international journal on the role of metal ions in biology, biochemistry, and medicine, 1994, Volume: 7, Issue:2

    Topics: Aluminum; Aminolevulinic Acid; Arthrobacter; Bacterial Proteins; Coproporphyrins; Dose-Response Relationship, Drug; Porphyrins; Spectrophotometry, Atomic

1994
Accumulation of porphyrins in plasma and tissues of dogs after delta-aminolevulinic acid administration: implications for photodynamic therapy.
    Pharmacology, 1996, Volume: 52, Issue:6

    Topics: Aminolevulinic Acid; Animals; Coproporphyrins; Dogs; Liver; Male; Neoplasms; Pancreas; Photochemotherapy; Porphyrins; Prostate

1996
Prolonged loss of consciousness and elevated porphyrins following propofol administrations.
    Anesthesiology, 1998, Volume: 89, Issue:4

    Topics: Adult; Aminolevulinic Acid; Anesthetics, Intravenous; Coproporphyrins; Humans; Male; Porphobilinogen; Porphyrins; Propofol; Unconsciousness

1998
delta-Aminolaevulinic acid-induced porphyrin synthesis and photodynamic inactivation of Escherichia coli B.
    Journal of photochemistry and photobiology. B, Biology, 1999, Volume: 50, Issue:1

    Topics: Aminolevulinic Acid; Coproporphyrins; Darkness; Dose-Response Relationship, Drug; Escherichia coli; Mesoporphyrins; Photochemotherapy; Photosensitizing Agents; Porphyrins; Protoporphyrins; Time Factors

1999
Inducing coproporphyria in rat hepatocyte cultures using cyclic AMP and cyclic AMP-releasing agents.
    Archives of toxicology, 2005, Volume: 79, Issue:7

    Topics: Aminolevulinic Acid; Animals; Cells, Cultured; Coproporphyrinogen Oxidase; Coproporphyrins; Cyclic AMP; Dose-Response Relationship, Drug; Glucagon; Hepatocytes; Isoproterenol; Male; Mitochondria, Liver; Oxygen Consumption; Porphyrias; Protoporphyrins; Rats; Rats, Wistar; Triiodothyronine

2005
Effect of insulin and glucagon on accumulation of uroporphyrin and coproporphyrin from 5-aminolevulinate in hepatocyte cultures.
    Archives of biochemistry and biophysics, 2005, Jul-01, Volume: 439, Issue:1

    Topics: Aminolevulinic Acid; Animals; Cells, Cultured; Chick Embryo; Coproporphyrins; Gastrointestinal Agents; Glucagon; Hepatocytes; Hypoglycemic Agents; Insulin; Photosensitizing Agents; Uroporphyrins

2005
Identification of tetrapyrrole compounds excreted by Rhodobacter sphaeroides and sources of the methyl hydrogens of bacteriochlorophyll a biosynthesized by R. sphaeroides, based on 13C-NMR spectral analysis of coproporphyrin III tetramethyl ester.
    Chemical & pharmaceutical bulletin, 2007, Volume: 55, Issue:7

    Topics: Aminolevulinic Acid; Bacteriochlorophyll A; Carbon Isotopes; Cells, Cultured; Coproporphyrinogens; Coproporphyrins; Esters; Hydrogen; Magnetic Resonance Spectroscopy; Methane; Molecular Structure; Rhodobacter sphaeroides; Tetrapyrroles; Uroporphyrinogens

2007
Comparative study of the bactericidal effects of 5-aminolevulinic acid with blue and red light on Propionibacterium acnes.
    The Journal of dermatology, 2011, Volume: 38, Issue:7

    Topics: Acne Vulgaris; Aminolevulinic Acid; Anti-Bacterial Agents; Coproporphyrins; Gram-Positive Bacterial Infections; Humans; In Vitro Techniques; Photochemotherapy; Photosensitizing Agents; Propionibacterium acnes; Protoporphyrins

2011
Effects of plasma membrane ABCB6 on 5-aminolevulinic acid (ALA)-induced porphyrin accumulation in vitro: tumor cell response to hypoxia.
    Photodiagnosis and photodynamic therapy, 2015, Volume: 12, Issue:1

    Topics: Aminolevulinic Acid; ATP-Binding Cassette Transporters; Cell Hypoxia; Cell Line, Tumor; Cell Membrane; Coproporphyrins; Humans; Metabolic Clearance Rate; Oxygen; Photosensitizing Agents; Stomach Neoplasms

2015
A study of concentration changes of Protoporphyrin IX and Coproporphyrin III in mixed samples mimicking conditions inside cancer cells for Photodynamic Therapy.
    PloS one, 2018, Volume: 13, Issue:8

    Topics: Aminolevulinic Acid; Animals; Coproporphyrins; Equipment Design; Fiber Optic Technology; In Vitro Techniques; Neoplasms; Photobleaching; Photochemotherapy; Photosensitizing Agents; Protoporphyrins; Spectrometry, Fluorescence

2018
Optimization of optical parameters for improved photodynamic therapy of Staphylococcus aureus using endogenous coproporphyrin III.
    Photodiagnosis and photodynamic therapy, 2020, Volume: 29

    Topics: Aminolevulinic Acid; Coproporphyrins; In Vitro Techniques; Monte Carlo Method; Photochemotherapy; Photosensitizing Agents; Skin Diseases, Bacterial; Staphylococcus aureus

2020