Metamath Proof Explorer

Theorem eldisjeqd

Description: Equality theorem for disjoint elementhood, deduction version. (Contributed by Peter Mazsa, 23-Sep-2021)

		Ref	Expression
	Hypothesis	eldisjeqd.1	$⊢ φ \to A = B$
	Assertion	eldisjeqd	$⊢ φ \to (ElDisj A \leftrightarrow ElDisj B)$

Step	Hyp	Ref	Expression
1		eldisjeqd.1	$⊢ φ \to A = B$
2		eldisjeq	$⊢ A = B \to (ElDisj A \leftrightarrow ElDisj B)$
3	1 2	syl	$⊢ φ \to (ElDisj A \leftrightarrow ElDisj B)$