Official Coding Guidelines

LOINC Dictionary

Search the complete LOINC database. Access official guidelines, notes, modifiers, and documentation requirements instantly.

LOINC Code Reference Directory

Browse the official clinical repository for active LOINC classifications. Up to 50 codes are displayed per page.

Code Category / Specialty Description
105302-4
Laboratory
General
Immune stain PD-L1 scoring method - Tissue
105303-2
Laboratory
General
Tumor cells+Macrophages+Lymphocytes.Programmed cell death ligand 1/Viable tumor cells [Ratio] in Tissue by Immune stain
105304-0
Laboratory
General
Tumor cells.Programmed cell death ligand 1/Viable tumor cells in Tissue by Immune stain
105305-7
Laboratory
General
Tumor area infiltrated with PD-L1 expressing immune cells/Total tumor area [Area Fraction] in Tissue by Immune stain
10531-2
Laboratory
General
Bretylium [Mass/volume] in Serum or Plasma
10532-0
Laboratory
General
Deprecated Desethylamiodarone [Mass/volume] in Serum or Plasma
105327-1
Laboratory
General
Glial fibrillary acidic protein [Mass/volume] in Blood by Immunoassay
105328-9
Laboratory
General
Ubiquitin carboxyl-terminal hydrolase-L1 [Mass/volume] in Blood by Immunoassay
105329-7
Laboratory
General
Hereditary angioedema multigene analysis in Blood by Molecular genetics method
10533-8
Laboratory
General
Propoxyphene+Acetaminophen [Mass/volume] in Serum or Plasma
105330-5
Laboratory
General
Hereditary bleeding disorders multigene analysis in Specimen by Molecular genetics method
105331-3
Laboratory
General
Hereditary bleeding disorders factor and von Willebrand multigene analysis in Specimen by Molecular genetics method
105332-1
Laboratory
General
MYH9 gene full mutation analysis in Blood by Molecular genetics method
105333-9
Laboratory
General
Hereditary platelet function defect multigene analysis in Blood by Molecular genetics method
105334-7
Laboratory
General
Hereditary platelet disorders multigene analysis in Blood or Tissue by Molecular genetics method
105335-4
Laboratory
General
Hereditary platelet storage pool deficiency multigene analysis in Blood by Molecular genetics method
105336-2
Laboratory
General
Hereditary thrombosis disorders multigene analysis in Blood by Molecular genetics method
105337-0
Laboratory
General
VWF and GP1BA gene mutation analysis in Specimen by Molecular genetics method
105338-8
Laboratory
General
Endomysium IgG Ab [Presence] in Serum by Immunofluorescence
105339-6
Laboratory
General
Chlamydia trachomatis L1 DNA [Presence] in Specimen by NAA with probe detection
10534-6
Laboratory
General
Diazoxide [Mass/volume] in Serum or Plasma
105340-4
Laboratory
General
Chlamydia trachomatis L3 DNA [Presence] in Specimen by NAA with probe detection
105341-2
Laboratory
General
2-Hydroxyglutarate aciduria multigene analysis in Blood or Tissue by Molecular genetics method
105342-0
Laboratory
General
3-Methylglutaconate aciduria multigene analysis in Blood or Tissue by Molecular genetics method
105343-8
Laboratory
General
Acute myeloid Leukemia multigene analysis in Blood or Tissue by Molecular genetics method
105344-6
Laboratory
General
Acute porphyria multigene analysis in Blood or Tissue by Molecular genetics method
105345-3
Laboratory
General
Cholestasis multigene analysis in Blood or Tissue by Molecular genetics method
105346-1
Laboratory
General
Glycosylation congenital disorders multigene analysis in Blood or Tissue by Molecular genetics method
105347-9
Laboratory
General
Methylmalonate aciduria multigene analysis in Blood or Tissue by Molecular genetics method
105348-7
Laboratory
General
Methylmalonate aciduria-propionic aciduria multigene analysis in Blood or Tissue by Molecular genetics method
105349-5
Laboratory
General
Neuronal ceroid lipofuscinosis multigene analysis in Blood or Tissue by Molecular genetics method
10535-3
Laboratory
General
Digoxin [Mass/volume] in Serum or Plasma
105350-3
Laboratory
General
Porphyria multigene analysis in Blood or Tissue by Molecular genetics method
105351-1
Laboratory
General
Hereditary erythrocytosis multigene analysis in Blood or Tissue by Molecular genetics method
105352-9
Laboratory
General
Congenital lactic acidosis multigene analysis in Blood or Tissue by Molecular genetics method
105353-7
Laboratory
General
Fatty acid oxidation multigene analysis in Blood or Tissue by Molecular genetics method
105354-5
Laboratory
General
Glutarate aciduria 2 multigene analysis in Blood or Tissue by Molecular genetics method
105355-2
Laboratory
General
Maple syrup urine disease multigene analysis in Blood or Tissue by Molecular genetics method
105356-0
Laboratory
General
Number of days having an air quality index value (AQI)
105357-8
Laboratory
General
Number of days having an AQI value 0 through 50
105358-6
Laboratory
General
Number of days having an AQI value 51 through 100
105359-4
Laboratory
General
Maximum air quality index (AQI)
10536-1
Laboratory
General
Dipyridamole [Mass/volume] in Serum or Plasma
105360-2
Laboratory
General
90 percent of daily air quality index (AQI) values
105361-0
Laboratory
General
Number of days carbon monoxide
105362-8
Laboratory
General
Number of days nitrogen dioxide
105363-6
Laboratory
General
Number of days ozone
105364-4
Laboratory
General
Number of days having an AQI value 101 through 150
105365-1
Laboratory
General
Number of days having an AQI value 151 through 200
105366-9
Laboratory
General
Number of days having an AQI value 201 or higher
Showing page 116 of 2187 (Total: 109314 codes)

LOINC: The Universal Language for Laboratory Observations and Clinical Data Exchange

In the highly networked ecosystem of modern healthcare, clinical data is constantly moving. Blood is drawn in a primary care clinic, shipped to a centralized reference laboratory across the state, analyzed by a robotic chemical analyzer, and the results are transmitted back to the physician's Electronic Health Record (EHR). Logical Observation Identifiers Names and Codes (LOINC) is the universal linguistic standard that makes this massive, instantaneous data exchange possible.

Developed and maintained by the Regenstrief Institute, LOINC is the international standard for identifying health measurements, observations, and documents. For Health Information Management (HIM) professionals, laboratory informaticists, and clinical data scientists, understanding LOINC is essential for achieving true semantic interoperability. Without LOINC, a hospital's EHR would not know whether an incoming lab result of "120" represented a safe sodium level or a lethal glucose level.

Health Informaticist's Note: The "Question and Answer" Paradigm

The easiest way to understand LOINC is to think of it as a standardized "Question." When a physician orders a Hemoglobin A1c test, they are asking a question: "What is the concentration of Hemoglobin A1c in this patient's blood right now?" The LOINC code (4548-4) represents that specific question. The SNOMED CT code or numerical value that comes back from the laboratory represents the "Answer."

Why Was LOINC Created? The Babel of Laboratory Codes

Before the widespread adoption of LOINC, every hospital laboratory and commercial reference lab (like Quest or LabCorp) used their own proprietary, local dictionary to identify tests.

Hospital A might use the local code "GLU_B" for a blood glucose test. Hospital B might use "S-GLUC," and LabCorp might use "00123." If a patient transferred from Hospital A to Hospital B, the receiving EHR had no way of knowing that "GLU_B" and "S-GLUC" were mathematically identical tests. The receiving physician would be forced to review a scanned PDF of the lab results, completely defeating the purpose of an electronic medical record. Clinical decision support systems (CDSS) could not trigger alerts for critical high glucose values because the software couldn't reliably identify which field contained the glucose data.

LOINC solved this problem by creating a universal taxonomy. By mapping all local, proprietary laboratory codes to a single, universally recognized LOINC code, data can flow seamlessly between disparate EHR platforms, government health agencies, and clinical registries.

The 6-Part Formal Naming Structure

A LOINC code itself is a simple identifier, typically consisting of three to seven digits followed by a hyphen and a single check digit (e.g., 4548-4). However, the true power of LOINC lies in the strict, six-part conceptual model that defines every single code. To generate a unique LOINC code, Regenstrief evaluates a test against these six independent axes:

  1. Component (What is being measured?): The analyte, target, or substance being evaluated (e.g., Potassium, Hemoglobin, Hepatitis C virus RNA).
  2. Property (What characteristic is measured?): The type of quantity being measured (e.g., Mass Concentration, Substance Concentration, Enzymatic Activity, Titer).
  3. Time Aspect (When was it measured?): The time interval over which the observation was made (e.g., Pt = Point in time/random; 24H = a 24-hour collection period, commonly used for urine tests).
  4. System (Where is the sample from?): The specimen type or physiological system (e.g., Ser/Plas = Serum or Plasma, Bld = Whole Blood, Urine, CSF).
  5. Scale (How is the result expressed?): Identifies the data type of the result:
    • Qn (Quantitative): A numeric value (e.g., 140 mg/dL).
    • Ord (Ordinal): A ranked result (e.g., Negative/1+/2+/3+, or Reactive/Non-Reactive).
    • Nom (Nominal): A categorical result without inherent order (e.g., identifying a specific bacterial species like E. coli).
  6. Method (How was the test performed?): This axis is only utilized if the specific laboratory method fundamentally alters the clinical interpretation of the result (e.g., Immunoassay vs. Mass Spectrometry). If the method doesn't change the clinical meaning, it is left blank to allow for broader interoperability.

Example Breakdown for LOINC 4548-4 (Hemoglobin A1c):
Component: Hemoglobin A1c/Hemoglobin.total
Property: Mass Fraction (MFr)
Time Aspect: Point in time (Pt)
System: Blood (Bld)
Scale: Quantitative (Qn)
Method: (Blank - method independent)

Laboratory LOINC vs. Clinical LOINC

While originally designed strictly for laboratory tests (Chemistry, Hematology, Microbiology), the scope of LOINC has expanded massively to cover virtually every clinical observation made in healthcare.

Laboratory LOINC

This covers the traditional domain of pathology and laboratory medicine. It includes highly complex molecular genetics, toxicology, antibiotic susceptibility panels, and public health reporting (such as the massive rollout of SARS-CoV-2 LOINC codes during the COVID-19 pandemic).

Clinical LOINC

This section encompasses clinical measurements and documents that are not generated by a physical fluid sample in a lab. It includes:

  • Vital Signs: Heart rate, respiratory rate, systolic/diastolic blood pressure (e.g., LOINC 8480-6 for Systolic blood pressure).
  • EKG / Radiology: Identifying specific imaging studies and cardiovascular measurements (e.g., PR Interval, QRS duration).
  • Clinical Documents (LOINC Document Ontology): Standardizing the naming of the actual clinical notes. For example, LOINC provides a specific code for a "Cardiology Outpatient Progress Note" versus a "Discharge Summary." This is heavily utilized in Health Information Exchanges (HIEs) when sharing CCDA (Consolidated Clinical Document Architecture) files.
  • Standardized Assessment Instruments: Patient surveys, depression scales (like the PHQ-9), and Glasgow Coma Scale scores.

LOINC vs. CPT: The RCM Intersection

For Revenue Cycle Management (RCM) and billing professionals, a common point of confusion is the relationship between CPT codes (specifically the 80000 series Pathology and Laboratory codes) and LOINC codes.

CPT codes are for Financial Reimbursement: When a laboratory performs a Basic Metabolic Panel (BMP), the billing department submits CPT 80048 to the insurance company. CPT tells the payer what service was performed so they can cut a check.

LOINC codes are for Clinical Interoperability: When the robotic analyzer finishes the BMP, it generates HL7 messages for Glucose, Calcium, Sodium, Potassium, etc. Each of those individual results is tagged with a specific LOINC code. LOINC tells the receiving Electronic Health Record what the data actually means so the physician can safely treat the patient.

While LOINC is not placed on a CMS-1500 or UB-04 claim form, its accurate configuration within the Laboratory Information System (LIS) is a strict federal requirement. Under the Promoting Interoperability (Meaningful Use) mandates, hospitals must utilize LOINC codes when transmitting reportable lab results to public health agencies and when providing electronic access to patients via patient portals.

Conclusion

LOINC is the unsung hero of modern health informatics. It operates invisibly behind the scenes of every patient portal, every automated clinical alert, and every public health dashboard. By enforcing a rigid, 6-axis conceptual model, it brings mathematical order to the chaotic world of laboratory and clinical observations.

For the healthcare data professional, mastering the principles of LOINC mapping is essential. It requires a meticulous understanding of laboratory methodologies, units of measure, and HL7 messaging standards. When configured correctly, a robust LOINC architecture ensures that critical health data flows seamlessly across state and national borders, empowering physicians with the precise information they need to save lives, while simultaneously satisfying stringent federal interoperability mandates.

Free LOINC Code Lookup & Search Tool

Welcome to the most comprehensive and lightning-fast LOINC code lookup tool available online. Whether you are a dedicated health information management (HIM) professional, a certified medical coder, a specialized biller, or a clinical data analyst, our advanced search engine allows you to instantly search LOINC codes and find highly accurate code descriptions in mere milliseconds. Navigating the complex world of healthcare terminology requires precision, and our platform is built to deliver exactly that.

Looking up medical codes can often be a frustrating and time-consuming experience, especially when relying on slow, clunky platforms or physical manuals that quickly become outdated. Our dedicated LOINC search directory elegantly bridges that gap. By utilizing our highly optimized, state-of-the-art database, you can effortlessly find LOINC code descriptions by simply typing a keyword, a specific diagnosis or procedure, an anatomical site, or the exact alphanumeric code itself. The results are rendered in real-time as you type, allowing you to completely bypass cumbersome PDF manuals and heavy physical coding books, streamlining your daily workflow.

How to Use Our LOINC Search Engine for Maximum Efficiency

To perform an accurate LOINC lookup, navigate to the intuitive search bar located at the top of this page. If you have a specific clinical term or abstract concept in mind, simply type the term into the search field. Our intelligent, NLP-driven algorithm will instantly scan the entire official database to populate a comprehensive list of matching LOINC codes and descriptions. Conversely, if you already possess the specific code and simply need to verify its validity or read the full tabular guidelines, you can type the identifier directly into the bar to instantly verify its official long-form description.

Our platform is meticulously engineered specifically for medical coders, billers, and clinical analysts who demand both speed and unwavering accuracy. When you search for LOINC codes on our website, you are guaranteed to receive the exact, official nomenclature published by the governing bodies. We provide the full tabular descriptions, ensuring that you understand the precise clinical nuances, including essential modifiers, bundling edits, and specific indicators required for clean claim submission and flawless clinical documentation.

Why Fast, Accurate Medical Code Lookup Matters in Healthcare

In the incredibly fast-paced environment of medical auditing, clinical documentation improvement (CDI), and revenue cycle management (RCM), time literally equates to money. Slow, laggy search platforms cause unnecessary friction and contribute to coder burnout. That is exactly why our free LOINC lookup tool is aggressively engineered to return complex search results in under 120 milliseconds. We have heavily optimized our backend server architecture so that the moment you need to look up a LOINC code, the data is delivered instantaneously. This relentless focus on performance makes our platform the premier, go-to destination for anyone in the healthcare industry asking, "How do I find a LOINC code description quickly and reliably?"

We highly recommend that you bookmark this page as your daily, primary resource for all your LOINC code search needs. We are deeply committed to maintaining this robust, frequently updated database as a permanent, free public utility for the global healthcare data community. Start typing your query into the search bar above to experience the absolute fastest, most reliable medical code lookup available on the internet today. Say goodbye to endless scrolling, frustrating page loads, and outdated indexes. Let our powerful, instantaneous search engine do the heavy lifting for your clinical documentation and coding operations. Whether you are aggressively searching by an exact code, a partial clinical description, or a broad medical category, our advanced tool delivers the exact LOINC code information you need to ensure total compliance and financial accuracy.