Severity by source
CVSS:4.0/AV:N/AC:L/AT:P/PR:N/UI:N/VC:H/VI:N/VA:N/SC:N/SI:N/SA:N/E:X/CR:X/IR:X/AR:X/MAV:X/MAC:X/MAT:X/MPR:X/MUI:X/MVC:X/MVI:X/MVA:X/MSC:X/MSI:X/MSA:X/S:X/AU:X/R:X/V:X/RE:X/U:X
DoH/DoH3 need no auth or valid key name (PR:N, AC:L); primary impact is zone-data disclosure (C:H) with conditional dynamic-update tampering (I:L), no availability impact.
AV:N/AC:L/PR:N/UI:N/S:U/C:H/I:H/A:H
Primary rating from Vendor (https://github.com/coredns/coredns).
CVSS VectorVendor: https://github.com/coredns/coredns
Lifecycle Timeline
6DescriptionCVE.org
Summary
The gRPC, QUIC, DoH, and DoH3 transports in CoreDNS incorrectly handle TSIG authentication.
For gRPC and QUIC, CoreDNS checks whether the TSIG key name exists in the config, but does not actually verify the TSIG HMAC. If the key name matches, tsigStatus remains nil and the tsig plugin treats the request as "verified".
For DoH and DoH3, the issue is worse: TSIG is not verified at all. The DoH response writer has TsigStatus() hardcoded to return nil, so any request containing a TSIG record is treated as authenticated, even if the key name is invalid and the MAC is garbage.
As a result, attackers may bypass TSIG authentication on affected transports and access TSIG-protected functionality such as AXFR/IXFR zone transfers, dynamic updates, or other TSIG-gated plugin behavior.
Details
In server_grpc.go and server_quic.go, the TSIG handling checks whether the TSIG key name exists, but does not call dns.TsigVerify().
Relevant code before fix:
if tsig := msg.IsTsig(); tsig != nil {
if s.tsigSecret == nil {
w.tsigStatus = dns.ErrSecret
} else if _, ok := s.tsigSecret[tsig.Hdr.Name]; !ok {
w.tsigStatus = dns.ErrSecret
}
// key found -> nothing happens -> tsigStatus stays nil -> "verified"
}This means that for gRPC and QUIC, a request with a known TSIG key name but an invalid MAC is accepted as authenticated.
PRs #7943 and #7947 partially addressed this area by adding key name checks for gRPC and QUIC, but did not add HMAC verification.
The DoH and DoH3 paths have an even weaker failure mode. In https.go, DoHWriter.TsigStatus() returned nil unconditionally:
func (d *DoHWriter) TsigStatus() error {
return nil
}In server_https.go, the incoming DNS message is unpacked from the HTTP request and passed directly into ServeDNS() without checking msg.IsTsig(), without looking up the TSIG key name, and without calling dns.TsigVerify().
The same pattern exists in the DoH3 path in server_https3.go.
The effective DoH/DoH3 flow before the fix was:
- HTTP or HTTP/3 request arrives.
- DNS message is unpacked from the request.
- A
DoHWriteris created. - The message is passed to
ServeDNS(). - The tsig plugin checks
w.TsigStatus(). TsigStatus()returns nil.- nil is interpreted as successful TSIG verification.
This means that for DoH and DoH3, CoreDNS did not even require a valid TSIG key name. Any TSIG record was enough to satisfy the tsig plugin, regardless of key name or MAC contents.
PoC
Setup: built CoreDNS from master at commit 12d9457 and also verified against the v1.14.2 release binary. Configured a single test zone with 9 records and tsig { require all }.
Listeners used the same TSIG configuration and key:
- TCP on port 1053, using the normal
dns.Serverpath where TSIG HMAC verification works correctly - gRPC on port 1443, using manual TSIG handling
- DoH on port 8443
- DoH3 with the same TSIG configuration
gRPC / QUIC behavior
A test client sent AXFR requests over gRPC with a valid TSIG key name but forged MAC values. The same requests were sent over TCP for comparison.
| MAC used | gRPC | TCP |
|---|---|---|
| 32 zero bytes | BYPASS, 9 records returned | BADSIG |
| 32 random bytes | BYPASS, 9 records returned | BADSIG |
| HMAC computed with wrong secret | BYPASS, 9 records returned | BADSIG |
| truncated to 16 bytes | BYPASS, 9 records returned | BADSIG |
single byte 0x41 | BYPASS, 9 records returned | BADSIG |
| empty MAC | BYPASS, 9 records returned | BADSIG |
| wrong key name + zero MAC | REJECTED, NOTAUTH/BADKEY | REJECTED, NOTAUTH/BADKEY |
6 out of 7 forged TSIG requests bypassed authentication over gRPC and returned a full zone transfer. The only rejected case was the wrong key name, because the gRPC path checked whether the key name existed.
The same class applied to QUIC.
DoH / DoH3 behavior
For DoH, a test client sent DNS queries over HTTPS POST to /dns-query with forged TSIG records. These requests were also compared against TCP.
| TSIG variant | DoH result | TCP result |
|---|---|---|
| 32 zero bytes | BYPASS, NOERROR | BADSIG |
| 32 random bytes | BYPASS, NOERROR | BADSIG |
| HMAC computed with wrong secret | BYPASS, NOERROR | BADSIG |
| truncated to 16 bytes | BYPASS, NOERROR | BADSIG |
single byte 0x41 | BYPASS, NOERROR | BADSIG |
| empty MAC | BYPASS, NOERROR | BADSIG |
| bad key name | BYPASS, NOERROR | NOTAUTH/BADKEY |
| no TSIG record | REJECTED, REFUSED | REJECTED, REFUSED |
7 out of 8 cases bypassed authentication over DoH. Every request containing a TSIG record was accepted, including requests with an invalid key name.
An AXFR request over DoH with a forged TSIG record using a zero-byte MAC returned the full test zone.
The same pattern applies to DoH3 because it used the same DoHWriter TSIG behavior and did not verify TSIG before passing the message into the plugin chain.
To confirm that the tsig plugin itself was enforcing policy, requests with no TSIG record were rejected with REFUSED. The bypass happens because the transport layer reports successful TSIG verification when verification either did not happen or only checked the key name.
Impact
An unauthenticated network attacker may bypass TSIG authentication on affected CoreDNS transports.
Depending on configuration, this may allow an attacker to:
- perform AXFR or IXFR zone transfers over affected transports
- dump TSIG-protected zone data
- submit dynamic DNS updates if enabled
- bypass other TSIG-gated plugin behavior
- authenticate over DoH or DoH3 without knowing a valid TSIG key name
The DoH and DoH3 variants have a lower exploitation bar than gRPC and QUIC because the attacker does not need to know a configured TSIG key name. Any TSIG record is treated as valid.
Affected transports
- gRPC
- QUIC
- DoH
- DoH3
Workarounds
If upgrading is not immediately possible:
- Disable gRPC, QUIC, DoH, and DoH3 listeners where TSIG authentication is required.
- Restrict network-level access to affected transport ports to trusted sources only.
- Avoid exposing TSIG-protected functionality such as AXFR, IXFR, or dynamic updates over affected transports.
Fix
Affected transports must verify TSIG before passing the DNS message into the plugin chain.
For requests containing a TSIG record, the transport should:
- check whether TSIG secrets are configured
- verify that the TSIG key name exists
- call
dns.TsigVerify()against the original wire-format message - store the resulting status in the response writer
- return that status from
TsigStatus()
A successful key name lookup alone is not sufficient. A nil TSIG status must only be returned after successful HMAC verification.
AnalysisAI
TSIG authentication bypass in CoreDNS before v1.14.3 allows unauthenticated network attackers to defeat TSIG protections on the gRPC, QUIC, DoH, and DoH3 transports and reach TSIG-gated functionality such as AXFR/IXFR zone transfers and dynamic updates. The gRPC/QUIC paths validate only the TSIG key name and never call dns.TsigVerify(), while DoH/DoH3 hardcode TsigStatus() to nil so any TSIG record - even one with an invalid key name and garbage MAC - is treated as verified. A detailed PoC demonstrates full zone dumps over forged requests; this is confirmed actively exploited status is not present (no public exploit identified at time of analysis beyond the reporter's PoC), and EPSS is low at 0.05%.
Technical ContextAI
The flaw is in CoreDNS's alternative DNS transports (server_grpc.go, server_quic.go, server_https.go, server_https3.go) which each reimplement request handling instead of reusing the standard miekg/dns.Server TSIG path that works correctly on TCP/UDP. TSIG (Transaction SIGnature, RFC 8945) authenticates DNS messages with a shared-secret HMAC over the wire-format message; correct verification requires dns.TsigVerify() against the original bytes, not merely confirming that the signalled key name is configured. On gRPC/QUIC the code sets tsigStatus to dns.ErrSecret only when secrets are absent or the key name is unknown, leaving status nil (interpreted as 'verified') for any known key name regardless of MAC. On DoH/DoH3 the DoHWriter.TsigStatus() method returns nil unconditionally and the message is passed straight into ServeDNS() with no IsTsig() check at all. This maps to CWE-287 (Improper Authentication) - the authentication step is present in the plugin chain but the transport layer feeds it a falsely-successful verification result. Affected package: pkg:go/github.com/coredns/coredns.
RemediationAI
Vendor-released patch: upgrade to CoreDNS v1.14.3 or later, which adds full TSIG verification across DoH (PR #8013), DoH3 (PR #8044), QUIC (PR #8007), and gRPC (PR #8006); release at https://github.com/coredns/coredns/releases/tag/v1.14.3. Red Hat users should apply RHSA-2026:25127. If immediate upgrade is not possible, disable the gRPC, QUIC, DoH, and DoH3 listeners wherever TSIG authentication is being relied upon (trade-off: clients using those encrypted/transport-specific endpoints lose service and must fall back to TCP/UDP where TSIG works correctly); restrict network-level access to the affected transport ports to trusted source ranges only via firewall/ACL (trade-off: does not help if any untrusted client must reach the port); and avoid exposing TSIG-gated functionality such as AXFR/IXFR zone transfers and dynamic updates over the affected transports until patched (trade-off: secondaries or update clients bound to those transports break). Do not rely on key-name secrecy as a control for gRPC/QUIC and rely on nothing for DoH/DoH3, since no valid key name is required there.
Same weakness CWE-287 – Improper Authentication
View allSame technique Authentication Bypass
View allVendor StatusVendor
SUSE
Severity: Critical| Product | Status |
|---|---|
| openSUSE Leap 16.0 | Fixed |
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External POC / Exploit Code
Leaving vuln.today
EUVD-2026-27493
GHSA-vp29-5652-4fw9