SDS-Gel Review
Use this skill when the user provides a gel image plus any of:
- DNA sequence
- protein sequence
- coding sequence length in bp
- expected protein size in kDa
- tag, construct, host, purification step, or lane labels
This is an interpretation skill, not a definitive assay. Distinguish what is directly observed from what is inferred.
Main goal
Given a gel image and partial sequence/context, produce a practical lab-style judgment:
- did the gel run cleanly or poorly
- is there a plausible main band
- does the main band roughly match the expected target
- are there obvious impurities, degradation, smearing, or aggregation
- what extra information would most improve confidence
Inputs to request or infer
Collect as many of these as possible before judging:
- gel image
- whether the image is SDS-PAGE, western blot, or native gel
- DNA sequence or protein sequence
- if only bp is given, whether it is coding sequence length
- expected protein name
- expected molecular weight in kDa
- expression host
- tag or fusion partner
- purification step or lane meaning
- whether reducing conditions were used
- whether a ladder is visible
If some are missing, continue with a lower-confidence interpretation.
How to reason
1. Normalize the sequence information
- If the user provides a protein sequence, use it directly.
- If the user provides a DNA sequence, treat it as coding sequence only if the context supports that.
- If the user provides only bp length, estimate protein length as
bp / 3 aa only when it is likely a coding region.
- Estimate theoretical protein mass with the rough rule
110 Da per amino acid.
- Convert to kDa and note that tags, signal peptides, cleavage, glycosylation, oligomerization, and unusual composition may shift apparent migration.
2. Read the gel image conservatively
Inspect the image for:
- lane count and lane boundaries
- visible labels above or below lanes
- presence or absence of ladder
- strongest band in each relevant lane
- approximate relative migration of the strongest band
- extra lower bands suggesting degradation
- extra upper bands suggesting dimers, aggregates, uncleaved fusion, or contaminants
- smearing, overloaded lanes, distorted fronts, or uneven running
- enrichment or loss across purification lanes if the labels indicate flow-through, wash, elution, pellet, or lysate
If the ladder is missing, use labeled lane order and relative migration only. Do not invent exact kDa values.
3. Compare expectation vs observation
Decide whether the image most supports one of these:
- likely target band at approximately expected size
- possible target band but confidence limited
- target band not clearly visible
- strong expression but poor purity
- purified sample but with degradation
- aggregation or high-MW species likely
- gel quality too poor for a reliable call
4. Explain confidence
Confidence is higher when:
- ladder is visible
- expected protein size is provided
- lane labels are clear
- construct/tag information is available
- the gel has multiple purification steps that tell a consistent story
Confidence is lower when:
- only bp count is provided
- ladder is absent
- lane labels are missing
- image quality is low
- the construct may include tags or cleavage not described
Important guardrails
- Never claim a precise molecular weight from the image when no ladder is visible.
- Never claim a band is definitely the target protein from DNA length alone.
- Clearly separate:
- Observation: what the image visibly shows
- Inference: what might explain it
- If the image quality or metadata are insufficient, say so plainly.
- Prefer practical lab wording over overconfident structural biology language.
Output format
Use this structure:
Overall judgment
- One short paragraph on whether the gel looks interpretable and whether the target seems present.
What I can directly see
- lane pattern
- strongest band(s)
- impurities, smear, aggregation, or degradation
- whether purification appears to improve the sample
Expected size estimate
- from protein sequence, DNA sequence, or bp count
- state assumptions clearly
Does the observed band roughly match?
- yes / maybe / unclear / no
- explain why
Main concerns
- 1 to 3 likely issues only
What would help next
- ask for the smallest missing item that would improve confidence, such as:
- ladder annotation
- lane labels
- exact coding sequence length
- tag/fusion information
- expected kDa
- original uncropped image
Practical heuristics
- Approximate aa count from coding sequence:
bp / 3
- Rough protein mass:
aa * 110 Da
- His-tag or small peptide tags usually shift size only slightly
- Large fusion tags can meaningfully shift migration
- Smear below the main band often suggests degradation or proteolysis
- Signal near the top or stacking boundary can suggest aggregation or incomplete denaturation
- A very thick single band with little else may still reflect overloading
Example task types
- "Here is a DNA sequence and SDS-PAGE image. Did my purification work?"
- "This construct is 978 bp. Does the main band in this gel make sense?"
- "I expect a 42 kDa protein. Which lane looks best?"
- "No ladder on this gel, but the lanes are labeled lysate, wash, elution. Please judge whether the elution looks clean."
1---2name: sds-gel-review3description: Review SDS-PAGE or protein purification gel images using DNA sequence, protein sequence, base-pair length, expected protein size, and lane labels. Use when the user wants to judge whether a gel ran well, whether the main band matches the expected product, or whether there may be impurities, degradation, aggregation, or low expression.4---5
6# SDS-Gel Review
7
8Use this skill when the user provides a gel image plus any of:
9
10- DNA sequence
11- protein sequence
12- coding sequence length in bp
13- expected protein size in kDa
14- tag, construct, host, purification step, or lane labels
15
16This is an interpretation skill, not a definitive assay. Distinguish what is directly observed from what is inferred.
17
18## Main goal
19
20Given a gel image and partial sequence/context, produce a practical lab-style judgment:
21
22- did the gel run cleanly or poorly
23- is there a plausible main band
24- does the main band roughly match the expected target
25- are there obvious impurities, degradation, smearing, or aggregation
26- what extra information would most improve confidence
27
28## Inputs to request or infer
29
30Collect as many of these as possible before judging:
31
32- gel image
33- whether the image is SDS-PAGE, western blot, or native gel
34- DNA sequence or protein sequence
35- if only bp is given, whether it is coding sequence length
36- expected protein name
37- expected molecular weight in kDa
38- expression host
39- tag or fusion partner
40- purification step or lane meaning
41- whether reducing conditions were used
42- whether a ladder is visible
43
44If some are missing, continue with a lower-confidence interpretation.
45
46## How to reason
47
48### 1. Normalize the sequence information
49
50- If the user provides a protein sequence, use it directly.
51- If the user provides a DNA sequence, treat it as coding sequence only if the context supports that.
52- If the user provides only bp length, estimate protein length as `bp / 3` aa only when it is likely a coding region.
53- Estimate theoretical protein mass with the rough rule `110 Da per amino acid`.
54- Convert to kDa and note that tags, signal peptides, cleavage, glycosylation, oligomerization, and unusual composition may shift apparent migration.
55
56### 2. Read the gel image conservatively
57
58Inspect the image for:
59
60- lane count and lane boundaries
61- visible labels above or below lanes
62- presence or absence of ladder
63- strongest band in each relevant lane
64- approximate relative migration of the strongest band
65- extra lower bands suggesting degradation
66- extra upper bands suggesting dimers, aggregates, uncleaved fusion, or contaminants
67- smearing, overloaded lanes, distorted fronts, or uneven running
68- enrichment or loss across purification lanes if the labels indicate flow-through, wash, elution, pellet, or lysate
69
70If the ladder is missing, use labeled lane order and relative migration only. Do not invent exact kDa values.
71
72### 3. Compare expectation vs observation
73
74Decide whether the image most supports one of these:
75
76- likely target band at approximately expected size
77- possible target band but confidence limited
78- target band not clearly visible
79- strong expression but poor purity
80- purified sample but with degradation
81- aggregation or high-MW species likely
82- gel quality too poor for a reliable call
83
84### 4. Explain confidence
85
86Confidence is higher when:
87
88- ladder is visible
89- expected protein size is provided
90- lane labels are clear
91- construct/tag information is available
92- the gel has multiple purification steps that tell a consistent story
93
94Confidence is lower when:
95
96- only bp count is provided
97- ladder is absent
98- lane labels are missing
99- image quality is low
100- the construct may include tags or cleavage not described
101
102## Important guardrails
103
104- Never claim a precise molecular weight from the image when no ladder is visible.
105- Never claim a band is definitely the target protein from DNA length alone.
106- Clearly separate:
107 - Observation: what the image visibly shows
108 - Inference: what might explain it
109- If the image quality or metadata are insufficient, say so plainly.
110- Prefer practical lab wording over overconfident structural biology language.
111
112## Output format
113
114Use this structure:
115
116### Overall judgment
117- One short paragraph on whether the gel looks interpretable and whether the target seems present.
118
119### What I can directly see
120- lane pattern
121- strongest band(s)
122- impurities, smear, aggregation, or degradation
123- whether purification appears to improve the sample
124
125### Expected size estimate
126- from protein sequence, DNA sequence, or bp count
127- state assumptions clearly
128
129### Does the observed band roughly match?
130- yes / maybe / unclear / no
131- explain why
132
133### Main concerns
134- 1 to 3 likely issues only
135
136### What would help next
137- ask for the smallest missing item that would improve confidence, such as:
138 - ladder annotation
139 - lane labels
140 - exact coding sequence length
141 - tag/fusion information
142 - expected kDa
143 - original uncropped image
144
145## Practical heuristics
146
147- Approximate aa count from coding sequence: `bp / 3`
148- Rough protein mass: `aa * 110 Da`
149- His-tag or small peptide tags usually shift size only slightly
150- Large fusion tags can meaningfully shift migration
151- Smear below the main band often suggests degradation or proteolysis
152- Signal near the top or stacking boundary can suggest aggregation or incomplete denaturation
153- A very thick single band with little else may still reflect overloading
154
155## Example task types
156
157- "Here is a DNA sequence and SDS-PAGE image. Did my purification work?"
158- "This construct is 978 bp. Does the main band in this gel make sense?"
159- "I expect a 42 kDa protein. Which lane looks best?"
160- "No ladder on this gel, but the lanes are labeled lysate, wash, elution. Please judge whether the elution looks clean."