| name | prisma-next-supabase |
| description | Use Prisma Next with a Supabase project via `@prisma-next/extension-supabase` — wire `extensions: [supabasePack]`, declare cross-space FKs to `supabase:auth.AuthUser`, author RLS policies (`policy_select` / `policy_update` / `@@rls`, `auth.uid()` predicates), build `db.ts` with the `supabase()` factory, bind roles per request (`asUser(jwt)` / `asAnon()` / `asServiceRole()`), query `auth.*` / `storage.*` via the `db.asServiceRole().supabase` admin root, and validate JWTs (`jwksUrl` for current projects / `jwtSecret` for legacy HS256). Use for supabase, RLS, row level security, policy, role binding, anon, authenticated, service_role, auth.users, auth.uid(), JWT, JWKS, SUPABASE_JWKS_URL, SUPABASE_JWT_SECRET, SUPABASE.JWT_INVALID, SUPABASE.CONFIG_INVALID, RoleBoundDb, session pooler, supabase:auth.AuthUser, @prisma-next/extension-supabase. |
Prisma Next — Supabase
Edit your data contract. Prisma handles the rest.
This skill covers using Prisma Next against a Supabase project end-to-end: composing the Supabase extension pack, referencing Supabase-owned tables from your contract, authoring row-level-security (RLS) policies, and running role-bound queries through the supabase() runtime.
When to Use
- User has a Supabase project (or wants one) and is wiring Prisma Next into it.
- User wants RLS policies on their tables (
policy_select, @@rls, auth.uid()).
- User wants per-request role binding (
asUser(jwt), asAnon(), asServiceRole()).
- User wants a foreign key into
auth.users (cross-space FK).
- User wants to read Supabase-internal tables (
auth.*, storage.*) as an admin.
- User mentions: supabase, RLS, row level security, policy, anon, authenticated, service_role, auth.users, auth.uid(), JWT, jwtSecret, jwksUrl, SUPABASE.JWT_INVALID, RoleBoundDb, session pooler.
When Not to Use
- General contract editing (models, fields, relations) →
prisma-next-contract.
- Non-Supabase
db.ts wiring, middleware, teardown → prisma-next-runtime.
- General query shapes (filtering, includes, aggregates) →
prisma-next-queries — everything there applies to a role-bound db too.
- Migration planning / applying →
prisma-next-migrations.
Key Concepts
- The pack is an
external contract space. @prisma-next/extension-supabase/pack ships a complete, introspection-generated contract of everything Supabase owns — the auth and storage schemas, their native enum types, and the platform roles (anon, authenticated, service_role) — all with control policy external. Composed via extensions, it means: the migration planner emits no DDL for those objects (Supabase manages them), and db verify confirms they exist in the live database. Your own tables stay managed as usual.
- Roles come from the pack; you never declare them. RLS
roles = [authenticated] identifiers resolve against the composed contract. Pointing the runtime at a non-Supabase Postgres fails verify with a not-found issue naming the missing role — the common "wrong database" misconfiguration surfaces before queries run.
- The runtime is role-first.
supabase() returns a SupabaseDb with no top-level query surface — there is no db.sql / db.orm until you bind a role. await db.asUser(jwt) / db.asAnon() / db.asServiceRole() each return a RoleBoundDb exposing .sql, .orm, .raw, .execute(plan), and .transaction(fn). This is deliberate: in a Supabase app there is no meaningful "no role" execution context, and defaulting to the connection's login role is a silent-RLS-bypass footgun.
- Role binding is below middleware and cannot leak. Each role-bound query runs on a connection that had
set_config('role', …) and set_config('request.jwt.claims', …) applied beneath the user-middleware chain, with RESET ALL on release. Postgres-side auth.uid() / auth.jwt() read those session vars — RLS enforcement is Postgres's job; the runtime's job is binding the context.
- RLS is enforced by policies and grants. Policies filter rows;
GRANT controls table access. Prisma Next authors and migrates the policies; it does not author grants (see What Prisma Next doesn't do yet). A role with policies but no GRANT gets a permission error, not filtered rows. On Supabase your public tables already carry the platform-role grants via default privileges — the grant that is actually missing out of the box is service_role's on auth.* / storage.* (see Workflow — Grants).
- JWT validation is eager and configurable — current Supabase projects need
jwksUrl. asUser(jwt) verifies the token (via jose) before any connection is acquired: signature + expiry against jwksUrl (asymmetric signing keys — the default on current Supabase projects, which sign ES256) xor jwtSecret (the symmetric HS256 secret — legacy projects only). Both or neither → a structured error with code SUPABASE.CONFIG_INVALID. Bad tokens throw a structured error with code SUPABASE.JWT_INVALID and a typed meta.reason — including a mismatch between the token's algorithm and the configured key source (an ES256 token against a jwtSecret client names the problem and tells you to switch to jwksUrl). The Postgres role is derived from the token's role claim (defaults to authenticated). Note: supabase status still prints a JWT_SECRET even on projects that sign ES256 — its presence does not mean your project uses it.
- Admin access to
auth.* / storage.* is a secondary root on service_role only — and needs a one-time grant. db.asServiceRole().supabase exposes the pack's own contract (.sql, .orm, .nativeEnums, .execute). The root exists only on service_role by design, but a real Supabase project grants service_role no table privileges on auth.* / storage.* (only schema USAGE; only postgres holds table grants). Before the admin root can read a Supabase-internal table, run the narrow grant once (see Workflow — Grants). asUser / asAnon have no .supabase, and the primary asServiceRole().sql / .orm stay scoped to your contract.
Workflow — Wire the pack into the config
The concept: the pack registers the Supabase contract space so your contract can reference it and the planner/verifier know what Supabase owns. The extension has no /control subpath yet, so it can't go through the target façade's defineConfig({ extensions: [...] }) — it wires into the low-level config's extensions (see What Prisma Next doesn't do yet). The low-level imports below are a deliberate exception to the façade-only import rule, forced by that gap; the block mirrors examples/supabase/prisma-next.config.ts verbatim — copy it rather than composing your own:
import postgresAdapter from '@prisma-next/adapter-postgres/control';
import { defineConfig } from '@prisma-next/cli/config-types';
import postgresDriver from '@prisma-next/driver-postgres/control';
import supabasePack from '@prisma-next/extension-supabase/pack';
import sql from '@prisma-next/family-sql/control';
import { prismaContract } from '@prisma-next/sql-contract-psl/provider';
import postgres from '@prisma-next/target-postgres/control';
import postgresPackRef from '@prisma-next/target-postgres/pack';
import { postgresCreateNamespace } from '@prisma-next/target-postgres/types';
export default defineConfig({
family: sql,
target: postgres,
adapter: postgresAdapter,
driver: postgresDriver,
extensions: [supabasePack],
contract: prismaContract('./src/contract.prisma', {
output: 'src/contract.json',
target: postgresPackRef,
createNamespace: postgresCreateNamespace,
}),
migrations: { dir: 'migrations' },
});
Workflow — Contract: FK into auth.users + RLS policies
The concept: your models live in your namespaces (public); Supabase's live in the pack's (auth, storage). A relation field typed supabase:auth.AuthUser is a cross-space FK — the planner emits REFERENCES "auth"."users"("id"), and the target table is verified, never migrated. RLS policies are top-level policy_<operation> blocks in the same namespace as their target model, and the target model must opt in with @@rls. Mirror examples/supabase/src/contract.prisma:
types {
Uuid = String @db.Uuid
}
namespace public {
model Profile {
id Uuid @id @default(uuid())
username String
userId Uuid @unique
user supabase:auth.AuthUser @relation(fields: [userId], references: [id], onDelete: Cascade)
@@map("profile")
@@rls
}
// authenticated may read only their own profile.
policy_select profile_owner_read {
target = Profile
roles = [authenticated]
using = "\"userId\"::uuid = auth.uid()"
}
// anon may read every profile (a public directory listing).
policy_select profile_public_read {
target = Profile
roles = [anon]
using = "true"
}
// authenticated may update only their own profile, and may not
// reassign it to another owner (WITH CHECK).
policy_update profile_owner_write {
target = Profile
roles = [authenticated]
using = "\"userId\"::uuid = auth.uid()"
withCheck = "\"userId\"::uuid = auth.uid()"
}
}
The pieces:
- Per-operation policy blocks:
policy_select, policy_insert, policy_update, policy_delete, policy_all. Body is key = value: target (a model in this namespace), roles (resolve against the composed contract — the pack supplies anon / authenticated / service_role), using, and (for write operations) withCheck. Multiple permissive policies per (target, operation) are valid — Postgres ORs them.
@@rls is required on policy targets. A policy_* block whose target model lacks @@rls fails emit with PSL_EXTENSION_TARGET_MODEL_MISSING_ATTRIBUTE. A model with @@rls and no policies is also meaningful: RLS enabled, deny-all.
- Predicates are verbatim SQL strings. Quote camelCase column names inside them (
\"userId\"), and cast where needed — auth.uid() returns uuid. Renames in your contract do not rewrite predicate bodies.
- TS-builder parity exists.
@prisma-next/postgres/contract-builder exports policySelect / policyInsert / policyUpdate / policyDelete / policyAll, rlsEnabled(Model), and role('anon') — mirroring the PSL lowering key-for-key (identical emitted wire names). PSL is the canonical path shown here.
Emit + migrate as usual (prisma-next contract emit, then prisma-next-migrations). The plan creates your table, its FK, ENABLE ROW LEVEL SECURITY, and the CREATE POLICY statements — and no DDL for auth.*.
Workflow — db.ts with the supabase() factory
The concept: instead of the stock postgres() factory, a Supabase app builds its client with supabase() from the extension's /runtime subpath. The factory is async (it prepares JWT key material — including the one-time JWKS fetch when jwksUrl is set), and the result is role-first.
import { supabase } from '@prisma-next/extension-supabase/runtime';
import type { Contract } from './contract.d';
import contractJson from './contract.json' with { type: 'json' };
export const db = await supabase<Contract>({
contractJson,
url: process.env['DATABASE_URL'],
jwksUrl: process.env['SUPABASE_JWKS_URL'],
});
Options beyond the basics: middleware (same composition as postgres() — see prisma-next-runtime; middleware never sees the role-binding set_config calls), poolOptions, pg (BYO pg.Pool / pg.Client instead of url). Teardown is await db.close() / await using exactly as in prisma-next-runtime — the same script-hang rules apply.
Workflow — Role-bound queries
The concept: bind the role that should execute the request, then query through the returned RoleBoundDb — every query surface from prisma-next-queries works, RLS-filtered by Postgres.
const userDb = await db.asUser(jwt);
const mine = await userDb.orm.public.Profile.select('id', 'username').all();
const listing = await db.asAnon().orm.public.Profile.select('id', 'username').all();
const all = await db.asServiceRole().orm.public.Profile.select('id', 'username').all();
const updated = await userDb.orm.public.Profile
.where({ userId: me })
.updateAndCount({ username: 'new-name' });
Notes: asAnon() / asServiceRole() are sync; only asUser is async. Multi-namespace contracts address models by coordinate (orm.public.Profile, sql.public.profile) — see prisma-next-queries § Namespace-aware accessors. RoleBoundDb.transaction(fn) wraps work in a transaction on the role-bound session.
Workflow — Admin reads of auth.* / storage.*
The concept: Supabase-internal tables are not part of your contract, so they are not on your query surfaces. The service_role binding carries a secondary root — db.asServiceRole().supabase — which is the pack's contract surface:
const admin = db.asServiceRole();
const users = await admin.supabase
.execute(admin.supabase.sql.auth.users.select('id', 'email').build())
.toArray();
const sessions = await admin.supabase.orm.auth.AuthSession.select('id', 'aal').all();
type AalLevel = (typeof admin.supabase.nativeEnums.auth.AalLevel)['Value'];
The admin root needs a one-time grant. A real Supabase project gives service_role no table privileges on auth.* / storage.* — out of the box, the reads above fail with permission denied for table users (sqlState 42501). Grant exactly what you read, narrowly:
GRANT USAGE ON SCHEMA auth TO service_role;
GRANT SELECT ON TABLE auth.users TO service_role;
Other boundaries to respect: asUser / asAnon have no .supabase; the admin root has no .transaction (it is a separate contract-bound runtime sharing the pool — a transaction spanning both roots is out of scope); and for user management (creating users, password resets) prefer the GoTrue Admin API — Supabase-internal schemas can drift across platform upgrades; direct service_role SQL is for ad-hoc admin reads.
Workflow — Grants
The concept: RLS policies are row filters on top of ordinary table privileges — a role with policies but no GRANT gets permission denied, not filtered rows. On Supabase the two directions are easy to get backwards:
- Your own
public tables need nothing. Supabase ships ALTER DEFAULT PRIVILEGES on public, so tables created by prisma-next db init / migrate inherit full grants for anon / authenticated / service_role automatically — the same as dashboard-created tables. RLS policies are what actually protect the rows; do not add per-table grants, and do not narrow the defaults unless you have a reason.
- The one grant you do need is for admin reads of Supabase-internal tables —
service_role has no table privileges on auth.* / storage.* (see Admin reads above for the narrow GRANT USAGE / GRANT SELECT pair).
Run grants via the Supabase SQL editor or psql. Symptom of a missing grant: permission denied for table … (sqlState 42501) instead of an empty result.
Workflow — Connecting to a real Supabase project
The concept: the runtime needs a direct, session-capable Postgres connection — it binds roles with session-scoped set_config + RESET ALL.
- Session pooler (
aws-0-<region>.pooler.supabase.com:5432, username postgres.<project-ref>) — works everywhere, IPv4. The default choice.
- Direct connection (
db.<project-ref>.supabase.co:5432) — works, but is IPv6-only on new projects; from IPv4-only environments it fails DNS/connect.
- Transaction pooler (port 6543) — do not use. Transaction pooling breaks session GUCs; role binding will misbehave.
.env carries DATABASE_URL and the JWT key source. For current projects that is SUPABASE_JWKS_URL — https://<project-ref>.supabase.co/auth/v1/.well-known/jwks.json (local stack: http://127.0.0.1:54321/auth/v1/.well-known/jwks.json). Only legacy HS256 projects use SUPABASE_JWT_SECRET (Project Settings → API → JWT Secret) — and note supabase status prints a JWT_SECRET even on ES256 projects, so don't infer the mode from its presence; check the JWKS endpoint or a token's header alg.
Common Pitfalls
- Using the transaction pooler (port 6543). Session GUC role binding requires a session-capable connection — use the session pooler (5432) or the direct connection.
- Wiring
jwtSecret because supabase status prints a JWT_SECRET. Current projects sign ES256; asUser then throws SUPABASE.JWT_INVALID explaining the token is ES256 and the client needs jwksUrl. Configure SUPABASE_JWKS_URL; reserve jwtSecret for legacy HS256 projects.
- Grants in the wrong direction. Your
public tables need no grants (Supabase's default privileges cover them; RLS protects the rows) — the grant you need is the narrow auth.* pair for service_role admin reads. permission denied (42501) means a missing grant, not a filtered result.
- Expecting
db.sql / db.orm on the top-level db. The Supabase db is role-first; bind a role, query the RoleBoundDb.
- Forgetting
await — on the supabase() factory and on asUser(jwt). Both are async; asAnon() / asServiceRole() are not.
- Expecting
.supabase on asUser / asAnon. Admin access to auth.* is service_role-only by construction — and even service_role needs the one-time narrow grant first.
- A
policy_* block whose target lacks @@rls. Emit fails with PSL_EXTENSION_TARGET_MODEL_MISSING_ATTRIBUTE — add @@rls to the model.
- Unquoted camelCase columns or missing casts in predicates. Predicates are verbatim SQL:
"userId" needs quotes; compare uuid to auth.uid() with a ::uuid cast where the column isn't already uuid.
- Passing both
jwksUrl and jwtSecret (or neither) — the supabase() promise rejects with SUPABASE.CONFIG_INVALID. It's an async factory, so the misconfiguration surfaces as a rejection (await / .catch), not a synchronous throw.
- Treating an RLS-filtered write as an error. An
UPDATE against a row the role can't see affects 0 rows (no exception); only withCheck violations raise.
What Prisma Next doesn't do yet
- No
/control subpath on the extension — it can't register through the target façade's defineConfig({ extensions: [...] }); wiring goes through the low-level config's extensions as shown above. File interest via prisma-next-feedback.
GRANT authoring. Table privileges are not contract elements; the one grant a Supabase app needs (the service_role auth.* pair for admin reads) is run once by hand (SQL editor / psql). If you want grants managed by the contract, file via prisma-next-feedback.
- Transactions spanning the app root and the
.supabase admin root. The two roots are separate contract-bound runtimes sharing one pool; a cross-root transaction is not supported.
- Triggers / functions as contract elements. The classic "create a profile row on signup"
auth.users trigger is authored as raw SQL against your database, not in the contract. auth.uid() etc. appear only inside opaque policy predicate strings.
- Supabase Realtime, storage uploads, PostgREST /
@supabase/supabase-js interop, edge runtimes. Out of scope for the extension — it speaks Postgres directly (Node.js / Bun).
Reference Files
examples/supabase — the canonical runnable app: config, contract, db.ts, acceptance tests, README.
packages/3-extensions/supabase/README.md — package-level reference (JWT modes, role-binding model, unsupported scope).
packages/3-extensions/supabase/src/runtime/supabase.ts — the authoritative options/type surface (SupabaseOptions, RoleBoundDb, ServiceRoleDb).
Checklist