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kDa Calculator — Convert Daltons to Kilodaltons & Estimate Protein Size

kDa Calculator — Convert Daltons to Kilodaltons & Estimate Protein Size
Biochemistry Tool

kDa Calculator

Convert between Daltons (Da), kilodaltons (kDa), and megadaltons (MDa) instantly, estimate protein molecular weight from amino acid count or gene length using the 110 Da/residue rule, and predict SDS-PAGE band position with a visual gel diagram.

Da ↔ kDa ↔ MDa Converter — Protein Mass Unit Conversion
Quick:
Please enter a positive number.
Protein Size Estimator — From Residue Count or Gene Length

Estimate protein molecular weight using the 110.5 Da/residue rule. Switch between amino acid count and nucleotide/gene length input.

Estimated Protein MW
kDa
Residues
Da
MDa
Based on 110.5 Da/residue average. Actual MW varies by ±15% depending on amino acid composition.
SDS-PAGE Migration Estimator — Predict Band Position from kDa

Enter protein MW in kDa to see approximate band position on a standard SDS-PAGE gel. Uses log-linear interpolation between reference ladder bands.

Ladder
Sample
How to read this gel: Smaller proteins migrate farther (lower on gel).
The orange band shows your protein's estimated position.
Black bands = molecular weight ladder reference.
Migration follows a log-linear relationship with MW.

* Band position is an estimate. Actual migration depends on protein shape, post-translational modifications, and buffer conditions.

Protein Size Reference Table — 25 Common Proteins and Their MW

Click any column header to sort. Click any row to load that protein's MW into the converter. Search by protein name.

Protein MW (kDa) Notes Relative Size

What Is a Dalton (Da) and Kilodalton (kDa)?

This kDa calculator converts between Daltons, kilodaltons, and megadaltons, estimates protein molecular weight from amino acid residue count, and predicts SDS-PAGE band position. It is designed for biochemists, molecular biologists, and students who need quick, accurate protein size calculations.

The Dalton (Da) is the standard unit of atomic and molecular mass, defined as one-twelfth the mass of a carbon-12 atom. Numerically, 1 Da equals 1 g/mol for molecular masses, which is why you will see protein molecular weights reported interchangeably in Da, g/mol, or kDa. 1 kDa = 1,000 Da — kilodalton simply means one thousand Daltons.

1 kDa = 1,000 Da = 1,000 g/mol To convert Da → kDa: divide by 1,000 | To convert kDa → Da: multiply by 1,000

Proteins are measured in kilodaltons because it is a more convenient scale for the sizes encountered in biology. Most proteins range from 5 kDa to 500 kDa — expressing these as Daltons (5,000 Da to 500,000 Da) is unwieldy. The kDa unit was universally adopted in biochemistry for this reason.

How to Figure Out kDa — The 110 Da/Residue Rule

If you know the number of amino acids in a protein, you can estimate its molecular weight in kDa using the average residue mass of 110 Da per amino acid (1 kDa = 1,000 Da, so each residue ≈ 0.11 kDa):

MW (kDa) ≈ number of amino acids × 110 ÷ 1,000 Example: 300 amino acids × 110 Da ÷ 1,000 = 33 kDa | Accurate to ±10–15%

The 110 Da average comes from the weighted mean residue mass across all 20 standard amino acids. Residue masses range from Glycine (57 Da, lightest) to Tryptophan (186 Da, heaviest). For most natural proteins, the 110 Da/residue rule gives a good first estimate before you have a sequence for exact calculation.

How to Convert Between Da and kDa

Converting between Daltons and kilodaltons is straightforward: 1 kDa = 1,000 Da, so you simply divide by 1,000 (Da → kDa) or multiply by 1,000 (kDa → Da). This is one of the most common conversions in biochemistry.

Da → kDa: value ÷ 1,000     kDa → Da: value × 1,000 1 kDa = 1,000 Da | 1 MDa = 1,000 kDa = 1,000,000 Da
ProteinDakDaMDa
Insulin5,8005.80.0058
Lysozyme14,30014.30.0143
Carbonic anhydrase29,00029.00.029
BSA66,50066.50.0665
IgG Antibody150,000150.00.150
Ferritin440,000440.00.440
Ribosome (70S)2,500,0002,5002.5

Amino Acid to kDa — Each Residue Adds ~0.11 kDa

A common question is how to convert amino acid count to kDa. Each amino acid residue adds approximately 110 Da = 0.11 kDa to protein molecular weight. This means a single amino acid contributes about one-tenth of a kilodalton. For example, a peptide with 10 residues ≈ 10 × 0.11 = 1.1 kDa; a protein with 500 residues ≈ 500 × 0.11 = 55 kDa.

Estimating Protein Size from Amino Acid or Gene Length

The 110 Da/residue approximation is the standard biochemistry shorthand for estimating protein size before sequencing or when a quick calculation is needed. The average of 110 Da arises from the weighted mean of all 20 amino acid residue masses weighted by their typical occurrence in natural proteins.

When does the 110 Da/residue rule fail? For proteins with unusual amino acid compositions — such as silk fibroin (Gly/Ala-rich, lighter residues) or Trp-rich membrane proteins — the true molecular weight can deviate by 15–20% from the estimate. For precise values, always use sequence-based calculation.

From Gene Length to Protein Size

For a coding DNA sequence, the relationship between gene length and protein size is: every 3 nucleotides (one codon) encodes one amino acid. Subtract one codon for the stop codon (which does not encode an amino acid). Then apply the 110 Da/residue rule:

Protein MW (kDa) ≈ ((bp ÷ 3) − 1) × 110 ÷ 1,000 Example: 1,000 bp → (333 − 1) × 110 ÷ 1,000 = 332 × 0.110 = 36.5 kDa
Gene LengthCodonsAmino AcidsEstimated MW (kDa)
300 bp10099~10.9
500 bp167166~18.3
1,000 bp333332~36.5
1,500 bp500499~54.9
2,000 bp667666~73.3
3,000 bp1,000999~110.0
1 kb333332~36.5
2 kb667666~73.3
5 kb1,6671,666~183.7

SDS-PAGE — Estimating Band Position from Molecular Weight

SDS-PAGE (sodium dodecyl sulfate polyacrylamide gel electrophoresis) separates proteins by molecular weight. SDS denatures proteins and gives them a uniform negative charge proportional to mass, so migration through the gel is determined almost entirely by protein size. Smaller proteins migrate farther and faster through the gel matrix.

The key relationship in SDS-PAGE is that log₁₀(MW) is approximately linearly proportional to migration distance (relative mobility, Rf). This log-linear relationship allows estimation of protein size by comparison to a molecular weight ladder with bands at known sizes (10, 15, 20, 25, 37, 50, 75, 100, 150, 250 kDa in most commercial ladders).

Gel % selection guide: 8% gels resolve 50–250 kDa proteins best. 10% gels work well for 30–150 kDa. 12% gels are standard for 15–100 kDa. 15% gels are optimal for 10–50 kDa. Always choose gel % based on your expected protein size.

Protein Size Reference — Common Proteins and Their Molecular Weights

The table below lists 25 well-characterized proteins spanning the full size range from small peptides (insulin, 5.8 kDa) to large multi-subunit complexes (ribosome, 2,500 kDa). These are the reference points most commonly used as molecular weight standards in biochemistry.

Why is BSA (66.5 kDa) the most common protein standard? Bovine serum albumin is cheap, stable, highly pure, and its molecular weight of 66.5 kDa (1 kDa = 1,000 Da) places it in the middle of the range relevant to most proteins. It serves as both a molecular weight marker in SDS-PAGE and a concentration standard in Bradford and BCA assays.

Why are IgG antibodies exactly 150 kDa? A full IgG antibody consists of four chains: 2 heavy chains (~50 kDa each) and 2 light chains (~25 kDa each). Total: 2×50 + 2×25 = 150 kDa. This is why 150 kDa is such a consistent reference point — all IgG antibodies have essentially the same overall architecture.

Worked Examples — kDa Conversion Problems

Example 1 — Converting BSA molecular weight

  1. BSA molecular weight = 66,500 Da
  2. Convert to kDa: 66,500 ÷ 1,000 = 66.5 kDa (1 kDa = 1,000 Da)
  3. Convert to MDa: 66,500 ÷ 1,000,000 = 0.0665 MDa
  4. Estimated residues: 66,500 ÷ 110 ≈ 605 amino acids

Example 2 — Estimating MW from residue count

  1. Protein has 333 amino acid residues
  2. Estimated MW = 333 × 110.5 Da = 36,796.5 Da
  3. In kDa: 36,796.5 ÷ 1,000 = 36.8 kDa
  4. Note: actual MW may differ by ±10–15% from the 110.5 Da/residue estimate

Example 3 — From gene length to protein size

  1. Gene length: 1,200 bp coding sequence
  2. Number of codons: 1,200 ÷ 3 = 400
  3. Amino acids: 400 − 1 (stop codon) = 399
  4. Estimated MW: 399 × 110.5 = 44,089.5 Da = 44.1 kDa

Example 4 — SDS-PAGE band position for a 45 kDa protein

  1. Protein MW = 45 kDa; gel percentage = 12%
  2. Nearest ladder bands: 50 kDa (Rf ≈ 0.52) and 37 kDa (Rf ≈ 0.63)
  3. Log-linear interpolation: Rf ≈ 0.57 (slightly above the 50 kDa band)
  4. Interpretation: band appears approximately 57% of the way from well to bottom — between the 37 and 50 kDa ladder bands, closer to 50 kDa

Frequently Asked Questions

What is a kilodalton (kDa)?
A kilodalton (kDa) is a unit of molecular mass equal to 1,000 Daltons (Da). 1 kDa = 1,000 Da = 1,000 g/mol. The Dalton is the standard unit of atomic mass used for molecules. Proteins are measured in kilodaltons because it provides a convenient scale — most proteins range from 5 kDa to 500 kDa. For comparison, water is 0.018 kDa and a typical enzyme might be 40–60 kDa.
How do you convert Da to kDa?
To convert Daltons to kilodaltons, divide by 1,000. Formula: kDa = Da ÷ 1,000. Since 1 kDa = 1,000 Da, the conversion is simple: move the decimal point three places to the left. Examples: 10,000 Da = 10 kDa; 66,500 Da (BSA) = 66.5 kDa; 150,000 Da (IgG) = 150 kDa. To convert kDa to Da, multiply by 1,000.
How big is a typical protein in kDa?
Most single-chain globular proteins are 10–100 kDa. Small proteins and peptides are under 10 kDa. Common sizes: insulin (5.8 kDa), ubiquitin (8.6 kDa), lysozyme (14.3 kDa), myoglobin (17 kDa), GFP (27 kDa), BSA (66.5 kDa). Multi-subunit complexes are much larger: IgG antibody (150 kDa), ferritin (440 kDa), ribosome (2,500 kDa). The 110 Da/residue rule means a 300-residue protein ≈ 33 kDa.
How do you estimate protein size from gene length?
For a coding sequence: Protein MW (kDa) ≈ ((base pairs ÷ 3) − 1) × 110 ÷ 1,000. The formula divides by 3 to get codons, subtracts 1 for the stop codon, multiplies by 110 Da (average residue mass), and divides by 1,000 to convert to kDa. Example: 1,500 bp → (500−1) × 110 ÷ 1,000 = 54.9 kDa. For kilobase input: multiply kb × 1,000 first to get bp.
What is the average mass of an amino acid residue?
The average amino acid residue mass is approximately 110.5 Da (weighted average across all 20 standard amino acids by natural abundance). This is the basis of the "110 Da per amino acid" rule of thumb used for quick protein size estimates. Individual residue masses range from Glycine (57 Da, lightest) to Tryptophan (186 Da, heaviest). Each amino acid contributes approximately 0.11 kDa to protein molecular weight.

Related Calculators

Quick Conversions
1,000 Da = 1 kDa
10,000 Da = 10 kDa
50,000 Da = 50 kDa
66,500 Da (BSA) = 66.5 kDa
150 kDa (IgG) = 150,000 Da
1 MDa = 1,000 kDa
AA → kDa (110 Da rule)
100 AA → ~11 kDa
200 AA → ~22 kDa
300 AA → ~33 kDa
400 AA → ~44 kDa
500 AA → ~55 kDa
750 AA → ~82.9 kDa
1000 AA → ~110.5 kDa
Key Facts
1 kDa = 1,000 Da
1 MDa = 1,000 kDa
1 Da = 1 g/mol
Avg residue = 110.5 Da
Per residue = ~0.11 kDa
3 bp = 1 amino acid

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