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PLGA

co-polymer of varying ratios of polylactic acid and polyglycolic acid, used as a matrix for drug delivery and for bone regeneration

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Record originEnglish Wikipedia
Text licenseCC BY-SA 4.0
Source revisionSep 20, 2026
Entity authorityQ2102907
Source-derived summary

PLGA, PLG, or poly(lactic-co-glycolic) acid (CAS: 26780-50-7 ) is a biodegradable, biocompatible copolymer of lactic and glycolic acid used widely in biomedical devices and tissue-engineering materials approved by the Food and Drug Administration (FDA). PLGA is synthesized by means of ring-opening co-polymerization of two different monomers: glycolide and lactide, the cyclic dimers (1,4-dioxane-2,5-diones) of glycolic acid and lactic acid, respectively. The polymer has emerged as platform for advanced drug delivery systems, including nanoparticles, because of its tunable degradation behavior and ability to encapsulate different therapeutic agents. Recent research features its growing role in precision medicine and targeted therapies, specifically in cancer treatment and controlled release applications.

Synthesis

PLGA is typically synthesized by ring-opening polymerization of the cyclic dimers lactide and glycolide, a method widely used because it allows better control over molecular weight and copolymer composition than direct condensation methods. Other reports show direct polycondensation of lactic acid and glycolic acid as another method, but this approach gives lower molecular weight material and is less suitable for producing controlled, high-performance PLGA grades. Common catalysts include tin(II) 2-ethylhexanoate and related organometallic catalysts, which are widely used in melt polymerization because of their activity and practical availability.

Copolymer

Depending on the ratio of lactide to glycolide used for the polymerization, different forms of PLGA can be obtained: these are usually identified in regard to the molar ratio of the monomers used (e.g. PLGA 75:25 identifies a copolymer whose composition is 75% lactic acid and 25% glycolic acid). The crystallinity of PLGAs will vary from fully amorphous to fully crystalline depending on block structure and molar ratio.

Editorial summary

Begin with the source’s own compact description: “PLGA” is co-polymer of varying ratios of polylactic acid and polyglycolic acid, used as a matrix for drug delivery and for bone regeneration. The dossier treats that line as a proposition to test through PLGA, co-polymer and varying, not as a finished interpretation.

Editorial reviewA concise reference frame for defining the subject, testing terminology and identifying the institution closest to the evidence. The current 264-word lead offers orientation but no explicit four-digit date, so chronology should not be assumed. The selected authority fields contribute no independent date. For this dossier, PLGA, co-polymer and varying is the immediate research focus.
Editorial analysis

Why this record matters

The phrase “co-polymer of varying ratios of polylactic acid and polyglycolic acid, used as a matrix for drug delivery and for bone regeneration” supplies a clear boundary for inquiry. It also exposes the unanswered questions: who defined that boundary, when it became stable and which sources sit outside it.

Evidence profile

Named sources, stable identifiers and responsible institutions provide the strongest route from overview to verifiable evidence. The source revision retrieved here is dated Sep 20, 2026. The linked authority identifier is Q2102907. None of the 0 selected statements returned an explicit reference.

Critical limits

The absence of detail may reflect summary conventions rather than a lack of surviving documentation. The lead is largely declarative, so disagreement and counter-evidence require a deliberate search beyond the opening account. Authority statements aid reconciliation but still require their own references, qualifiers and ranks to be checked.

How to read it

Use the entry as an orientation point, then follow its citations and revision history. Names, dates and institutional relationships should be checked against the original record.

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Three-step research path

  1. Establish the record: confirm the title “PLGA”, its source revision and the description used here.
  2. Expand the search: follow PLGA primary sources, PLGA archive and PLGA research across catalogues and specialist indexes.
  3. Test the account: compare the strongest cited source with the responsible institution’s current record and note any disagreement.

Questions for further research

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Source & attribution

This entry incorporates text from PLGA” on English Wikipedia. Contributors are listed in the page history. Text is available under the Creative Commons Attribution-ShareAlike 4.0 License. Selected authority identifiers and statements are retrieved from Wikidata under CC0; their references and qualifiers remain part of the verification path.